pvrusb2: reduce stack usage pvr2_eeprom_analyze()
[linux/fpc-iii.git] / drivers / net / ethernet / via / via-velocity.c
blob908e72e18ef7189e64fd99524d88798a8f60a1a5
1 /*
2 * This code is derived from the VIA reference driver (copyright message
3 * below) provided to Red Hat by VIA Networking Technologies, Inc. for
4 * addition to the Linux kernel.
6 * The code has been merged into one source file, cleaned up to follow
7 * Linux coding style, ported to the Linux 2.6 kernel tree and cleaned
8 * for 64bit hardware platforms.
10 * TODO
11 * rx_copybreak/alignment
12 * More testing
14 * The changes are (c) Copyright 2004, Red Hat Inc. <alan@lxorguk.ukuu.org.uk>
15 * Additional fixes and clean up: Francois Romieu
17 * This source has not been verified for use in safety critical systems.
19 * Please direct queries about the revamped driver to the linux-kernel
20 * list not VIA.
22 * Original code:
24 * Copyright (c) 1996, 2003 VIA Networking Technologies, Inc.
25 * All rights reserved.
27 * This software may be redistributed and/or modified under
28 * the terms of the GNU General Public License as published by the Free
29 * Software Foundation; either version 2 of the License, or
30 * any later version.
32 * This program is distributed in the hope that it will be useful, but
33 * WITHOUT ANY WARRANTY; without even the implied warranty of MERCHANTABILITY
34 * or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
35 * for more details.
37 * Author: Chuang Liang-Shing, AJ Jiang
39 * Date: Jan 24, 2003
41 * MODULE_LICENSE("GPL");
45 #include <linux/module.h>
46 #include <linux/types.h>
47 #include <linux/bitops.h>
48 #include <linux/init.h>
49 #include <linux/dma-mapping.h>
50 #include <linux/mm.h>
51 #include <linux/errno.h>
52 #include <linux/ioport.h>
53 #include <linux/pci.h>
54 #include <linux/kernel.h>
55 #include <linux/netdevice.h>
56 #include <linux/etherdevice.h>
57 #include <linux/skbuff.h>
58 #include <linux/delay.h>
59 #include <linux/timer.h>
60 #include <linux/slab.h>
61 #include <linux/interrupt.h>
62 #include <linux/string.h>
63 #include <linux/wait.h>
64 #include <linux/io.h>
65 #include <linux/if.h>
66 #include <linux/uaccess.h>
67 #include <linux/proc_fs.h>
68 #include <linux/of_address.h>
69 #include <linux/of_device.h>
70 #include <linux/of_irq.h>
71 #include <linux/inetdevice.h>
72 #include <linux/platform_device.h>
73 #include <linux/reboot.h>
74 #include <linux/ethtool.h>
75 #include <linux/mii.h>
76 #include <linux/in.h>
77 #include <linux/if_arp.h>
78 #include <linux/if_vlan.h>
79 #include <linux/ip.h>
80 #include <linux/tcp.h>
81 #include <linux/udp.h>
82 #include <linux/crc-ccitt.h>
83 #include <linux/crc32.h>
85 #include "via-velocity.h"
87 enum velocity_bus_type {
88 BUS_PCI,
89 BUS_PLATFORM,
92 static int velocity_nics;
93 static int msglevel = MSG_LEVEL_INFO;
95 static void velocity_set_power_state(struct velocity_info *vptr, char state)
97 void *addr = vptr->mac_regs;
99 if (vptr->pdev)
100 pci_set_power_state(vptr->pdev, state);
101 else
102 writeb(state, addr + 0x154);
106 * mac_get_cam_mask - Read a CAM mask
107 * @regs: register block for this velocity
108 * @mask: buffer to store mask
110 * Fetch the mask bits of the selected CAM and store them into the
111 * provided mask buffer.
113 static void mac_get_cam_mask(struct mac_regs __iomem *regs, u8 *mask)
115 int i;
117 /* Select CAM mask */
118 BYTE_REG_BITS_SET(CAMCR_PS_CAM_MASK, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
120 writeb(0, &regs->CAMADDR);
122 /* read mask */
123 for (i = 0; i < 8; i++)
124 *mask++ = readb(&(regs->MARCAM[i]));
126 /* disable CAMEN */
127 writeb(0, &regs->CAMADDR);
129 /* Select mar */
130 BYTE_REG_BITS_SET(CAMCR_PS_MAR, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
134 * mac_set_cam_mask - Set a CAM mask
135 * @regs: register block for this velocity
136 * @mask: CAM mask to load
138 * Store a new mask into a CAM
140 static void mac_set_cam_mask(struct mac_regs __iomem *regs, u8 *mask)
142 int i;
143 /* Select CAM mask */
144 BYTE_REG_BITS_SET(CAMCR_PS_CAM_MASK, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
146 writeb(CAMADDR_CAMEN, &regs->CAMADDR);
148 for (i = 0; i < 8; i++)
149 writeb(*mask++, &(regs->MARCAM[i]));
151 /* disable CAMEN */
152 writeb(0, &regs->CAMADDR);
154 /* Select mar */
155 BYTE_REG_BITS_SET(CAMCR_PS_MAR, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
158 static void mac_set_vlan_cam_mask(struct mac_regs __iomem *regs, u8 *mask)
160 int i;
161 /* Select CAM mask */
162 BYTE_REG_BITS_SET(CAMCR_PS_CAM_MASK, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
164 writeb(CAMADDR_CAMEN | CAMADDR_VCAMSL, &regs->CAMADDR);
166 for (i = 0; i < 8; i++)
167 writeb(*mask++, &(regs->MARCAM[i]));
169 /* disable CAMEN */
170 writeb(0, &regs->CAMADDR);
172 /* Select mar */
173 BYTE_REG_BITS_SET(CAMCR_PS_MAR, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
177 * mac_set_cam - set CAM data
178 * @regs: register block of this velocity
179 * @idx: Cam index
180 * @addr: 2 or 6 bytes of CAM data
182 * Load an address or vlan tag into a CAM
184 static void mac_set_cam(struct mac_regs __iomem *regs, int idx, const u8 *addr)
186 int i;
188 /* Select CAM mask */
189 BYTE_REG_BITS_SET(CAMCR_PS_CAM_DATA, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
191 idx &= (64 - 1);
193 writeb(CAMADDR_CAMEN | idx, &regs->CAMADDR);
195 for (i = 0; i < 6; i++)
196 writeb(*addr++, &(regs->MARCAM[i]));
198 BYTE_REG_BITS_ON(CAMCR_CAMWR, &regs->CAMCR);
200 udelay(10);
202 writeb(0, &regs->CAMADDR);
204 /* Select mar */
205 BYTE_REG_BITS_SET(CAMCR_PS_MAR, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
208 static void mac_set_vlan_cam(struct mac_regs __iomem *regs, int idx,
209 const u8 *addr)
212 /* Select CAM mask */
213 BYTE_REG_BITS_SET(CAMCR_PS_CAM_DATA, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
215 idx &= (64 - 1);
217 writeb(CAMADDR_CAMEN | CAMADDR_VCAMSL | idx, &regs->CAMADDR);
218 writew(*((u16 *) addr), &regs->MARCAM[0]);
220 BYTE_REG_BITS_ON(CAMCR_CAMWR, &regs->CAMCR);
222 udelay(10);
224 writeb(0, &regs->CAMADDR);
226 /* Select mar */
227 BYTE_REG_BITS_SET(CAMCR_PS_MAR, CAMCR_PS1 | CAMCR_PS0, &regs->CAMCR);
232 * mac_wol_reset - reset WOL after exiting low power
233 * @regs: register block of this velocity
235 * Called after we drop out of wake on lan mode in order to
236 * reset the Wake on lan features. This function doesn't restore
237 * the rest of the logic from the result of sleep/wakeup
239 static void mac_wol_reset(struct mac_regs __iomem *regs)
242 /* Turn off SWPTAG right after leaving power mode */
243 BYTE_REG_BITS_OFF(STICKHW_SWPTAG, &regs->STICKHW);
244 /* clear sticky bits */
245 BYTE_REG_BITS_OFF((STICKHW_DS1 | STICKHW_DS0), &regs->STICKHW);
247 BYTE_REG_BITS_OFF(CHIPGCR_FCGMII, &regs->CHIPGCR);
248 BYTE_REG_BITS_OFF(CHIPGCR_FCMODE, &regs->CHIPGCR);
249 /* disable force PME-enable */
250 writeb(WOLCFG_PMEOVR, &regs->WOLCFGClr);
251 /* disable power-event config bit */
252 writew(0xFFFF, &regs->WOLCRClr);
253 /* clear power status */
254 writew(0xFFFF, &regs->WOLSRClr);
257 static const struct ethtool_ops velocity_ethtool_ops;
260 Define module options
263 MODULE_AUTHOR("VIA Networking Technologies, Inc.");
264 MODULE_LICENSE("GPL");
265 MODULE_DESCRIPTION("VIA Networking Velocity Family Gigabit Ethernet Adapter Driver");
267 #define VELOCITY_PARAM(N, D) \
268 static int N[MAX_UNITS] = OPTION_DEFAULT;\
269 module_param_array(N, int, NULL, 0); \
270 MODULE_PARM_DESC(N, D);
272 #define RX_DESC_MIN 64
273 #define RX_DESC_MAX 255
274 #define RX_DESC_DEF 64
275 VELOCITY_PARAM(RxDescriptors, "Number of receive descriptors");
277 #define TX_DESC_MIN 16
278 #define TX_DESC_MAX 256
279 #define TX_DESC_DEF 64
280 VELOCITY_PARAM(TxDescriptors, "Number of transmit descriptors");
282 #define RX_THRESH_MIN 0
283 #define RX_THRESH_MAX 3
284 #define RX_THRESH_DEF 0
285 /* rx_thresh[] is used for controlling the receive fifo threshold.
286 0: indicate the rxfifo threshold is 128 bytes.
287 1: indicate the rxfifo threshold is 512 bytes.
288 2: indicate the rxfifo threshold is 1024 bytes.
289 3: indicate the rxfifo threshold is store & forward.
291 VELOCITY_PARAM(rx_thresh, "Receive fifo threshold");
293 #define DMA_LENGTH_MIN 0
294 #define DMA_LENGTH_MAX 7
295 #define DMA_LENGTH_DEF 6
297 /* DMA_length[] is used for controlling the DMA length
298 0: 8 DWORDs
299 1: 16 DWORDs
300 2: 32 DWORDs
301 3: 64 DWORDs
302 4: 128 DWORDs
303 5: 256 DWORDs
304 6: SF(flush till emply)
305 7: SF(flush till emply)
307 VELOCITY_PARAM(DMA_length, "DMA length");
309 #define IP_ALIG_DEF 0
310 /* IP_byte_align[] is used for IP header DWORD byte aligned
311 0: indicate the IP header won't be DWORD byte aligned.(Default) .
312 1: indicate the IP header will be DWORD byte aligned.
313 In some environment, the IP header should be DWORD byte aligned,
314 or the packet will be droped when we receive it. (eg: IPVS)
316 VELOCITY_PARAM(IP_byte_align, "Enable IP header dword aligned");
318 #define FLOW_CNTL_DEF 1
319 #define FLOW_CNTL_MIN 1
320 #define FLOW_CNTL_MAX 5
322 /* flow_control[] is used for setting the flow control ability of NIC.
323 1: hardware deafult - AUTO (default). Use Hardware default value in ANAR.
324 2: enable TX flow control.
325 3: enable RX flow control.
326 4: enable RX/TX flow control.
327 5: disable
329 VELOCITY_PARAM(flow_control, "Enable flow control ability");
331 #define MED_LNK_DEF 0
332 #define MED_LNK_MIN 0
333 #define MED_LNK_MAX 5
334 /* speed_duplex[] is used for setting the speed and duplex mode of NIC.
335 0: indicate autonegotiation for both speed and duplex mode
336 1: indicate 100Mbps half duplex mode
337 2: indicate 100Mbps full duplex mode
338 3: indicate 10Mbps half duplex mode
339 4: indicate 10Mbps full duplex mode
340 5: indicate 1000Mbps full duplex mode
342 Note:
343 if EEPROM have been set to the force mode, this option is ignored
344 by driver.
346 VELOCITY_PARAM(speed_duplex, "Setting the speed and duplex mode");
348 #define WOL_OPT_DEF 0
349 #define WOL_OPT_MIN 0
350 #define WOL_OPT_MAX 7
351 /* wol_opts[] is used for controlling wake on lan behavior.
352 0: Wake up if recevied a magic packet. (Default)
353 1: Wake up if link status is on/off.
354 2: Wake up if recevied an arp packet.
355 4: Wake up if recevied any unicast packet.
356 Those value can be sumed up to support more than one option.
358 VELOCITY_PARAM(wol_opts, "Wake On Lan options");
360 static int rx_copybreak = 200;
361 module_param(rx_copybreak, int, 0644);
362 MODULE_PARM_DESC(rx_copybreak, "Copy breakpoint for copy-only-tiny-frames");
365 * Internal board variants. At the moment we have only one
367 static struct velocity_info_tbl chip_info_table[] = {
368 {CHIP_TYPE_VT6110, "VIA Networking Velocity Family Gigabit Ethernet Adapter", 1, 0x00FFFFFFUL},
373 * Describe the PCI device identifiers that we support in this
374 * device driver. Used for hotplug autoloading.
377 static const struct pci_device_id velocity_pci_id_table[] = {
378 { PCI_DEVICE(PCI_VENDOR_ID_VIA, PCI_DEVICE_ID_VIA_612X) },
382 MODULE_DEVICE_TABLE(pci, velocity_pci_id_table);
385 * Describe the OF device identifiers that we support in this
386 * device driver. Used for devicetree nodes.
388 static const struct of_device_id velocity_of_ids[] = {
389 { .compatible = "via,velocity-vt6110", .data = &chip_info_table[0] },
390 { /* Sentinel */ },
392 MODULE_DEVICE_TABLE(of, velocity_of_ids);
395 * get_chip_name - identifier to name
396 * @id: chip identifier
398 * Given a chip identifier return a suitable description. Returns
399 * a pointer a static string valid while the driver is loaded.
401 static const char *get_chip_name(enum chip_type chip_id)
403 int i;
404 for (i = 0; chip_info_table[i].name != NULL; i++)
405 if (chip_info_table[i].chip_id == chip_id)
406 break;
407 return chip_info_table[i].name;
411 * velocity_set_int_opt - parser for integer options
412 * @opt: pointer to option value
413 * @val: value the user requested (or -1 for default)
414 * @min: lowest value allowed
415 * @max: highest value allowed
416 * @def: default value
417 * @name: property name
418 * @dev: device name
420 * Set an integer property in the module options. This function does
421 * all the verification and checking as well as reporting so that
422 * we don't duplicate code for each option.
424 static void velocity_set_int_opt(int *opt, int val, int min, int max, int def,
425 char *name, const char *devname)
427 if (val == -1)
428 *opt = def;
429 else if (val < min || val > max) {
430 VELOCITY_PRT(MSG_LEVEL_INFO, KERN_NOTICE "%s: the value of parameter %s is invalid, the valid range is (%d-%d)\n",
431 devname, name, min, max);
432 *opt = def;
433 } else {
434 VELOCITY_PRT(MSG_LEVEL_INFO, KERN_INFO "%s: set value of parameter %s to %d\n",
435 devname, name, val);
436 *opt = val;
441 * velocity_set_bool_opt - parser for boolean options
442 * @opt: pointer to option value
443 * @val: value the user requested (or -1 for default)
444 * @def: default value (yes/no)
445 * @flag: numeric value to set for true.
446 * @name: property name
447 * @dev: device name
449 * Set a boolean property in the module options. This function does
450 * all the verification and checking as well as reporting so that
451 * we don't duplicate code for each option.
453 static void velocity_set_bool_opt(u32 *opt, int val, int def, u32 flag,
454 char *name, const char *devname)
456 (*opt) &= (~flag);
457 if (val == -1)
458 *opt |= (def ? flag : 0);
459 else if (val < 0 || val > 1) {
460 printk(KERN_NOTICE "%s: the value of parameter %s is invalid, the valid range is (0-1)\n",
461 devname, name);
462 *opt |= (def ? flag : 0);
463 } else {
464 printk(KERN_INFO "%s: set parameter %s to %s\n",
465 devname, name, val ? "TRUE" : "FALSE");
466 *opt |= (val ? flag : 0);
471 * velocity_get_options - set options on device
472 * @opts: option structure for the device
473 * @index: index of option to use in module options array
474 * @devname: device name
476 * Turn the module and command options into a single structure
477 * for the current device
479 static void velocity_get_options(struct velocity_opt *opts, int index,
480 const char *devname)
483 velocity_set_int_opt(&opts->rx_thresh, rx_thresh[index], RX_THRESH_MIN, RX_THRESH_MAX, RX_THRESH_DEF, "rx_thresh", devname);
484 velocity_set_int_opt(&opts->DMA_length, DMA_length[index], DMA_LENGTH_MIN, DMA_LENGTH_MAX, DMA_LENGTH_DEF, "DMA_length", devname);
485 velocity_set_int_opt(&opts->numrx, RxDescriptors[index], RX_DESC_MIN, RX_DESC_MAX, RX_DESC_DEF, "RxDescriptors", devname);
486 velocity_set_int_opt(&opts->numtx, TxDescriptors[index], TX_DESC_MIN, TX_DESC_MAX, TX_DESC_DEF, "TxDescriptors", devname);
488 velocity_set_int_opt(&opts->flow_cntl, flow_control[index], FLOW_CNTL_MIN, FLOW_CNTL_MAX, FLOW_CNTL_DEF, "flow_control", devname);
489 velocity_set_bool_opt(&opts->flags, IP_byte_align[index], IP_ALIG_DEF, VELOCITY_FLAGS_IP_ALIGN, "IP_byte_align", devname);
490 velocity_set_int_opt((int *) &opts->spd_dpx, speed_duplex[index], MED_LNK_MIN, MED_LNK_MAX, MED_LNK_DEF, "Media link mode", devname);
491 velocity_set_int_opt(&opts->wol_opts, wol_opts[index], WOL_OPT_MIN, WOL_OPT_MAX, WOL_OPT_DEF, "Wake On Lan options", devname);
492 opts->numrx = (opts->numrx & ~3);
496 * velocity_init_cam_filter - initialise CAM
497 * @vptr: velocity to program
499 * Initialize the content addressable memory used for filters. Load
500 * appropriately according to the presence of VLAN
502 static void velocity_init_cam_filter(struct velocity_info *vptr)
504 struct mac_regs __iomem *regs = vptr->mac_regs;
505 unsigned int vid, i = 0;
507 /* Turn on MCFG_PQEN, turn off MCFG_RTGOPT */
508 WORD_REG_BITS_SET(MCFG_PQEN, MCFG_RTGOPT, &regs->MCFG);
509 WORD_REG_BITS_ON(MCFG_VIDFR, &regs->MCFG);
511 /* Disable all CAMs */
512 memset(vptr->vCAMmask, 0, sizeof(u8) * 8);
513 memset(vptr->mCAMmask, 0, sizeof(u8) * 8);
514 mac_set_vlan_cam_mask(regs, vptr->vCAMmask);
515 mac_set_cam_mask(regs, vptr->mCAMmask);
517 /* Enable VCAMs */
518 for_each_set_bit(vid, vptr->active_vlans, VLAN_N_VID) {
519 mac_set_vlan_cam(regs, i, (u8 *) &vid);
520 vptr->vCAMmask[i / 8] |= 0x1 << (i % 8);
521 if (++i >= VCAM_SIZE)
522 break;
524 mac_set_vlan_cam_mask(regs, vptr->vCAMmask);
527 static int velocity_vlan_rx_add_vid(struct net_device *dev,
528 __be16 proto, u16 vid)
530 struct velocity_info *vptr = netdev_priv(dev);
532 spin_lock_irq(&vptr->lock);
533 set_bit(vid, vptr->active_vlans);
534 velocity_init_cam_filter(vptr);
535 spin_unlock_irq(&vptr->lock);
536 return 0;
539 static int velocity_vlan_rx_kill_vid(struct net_device *dev,
540 __be16 proto, u16 vid)
542 struct velocity_info *vptr = netdev_priv(dev);
544 spin_lock_irq(&vptr->lock);
545 clear_bit(vid, vptr->active_vlans);
546 velocity_init_cam_filter(vptr);
547 spin_unlock_irq(&vptr->lock);
548 return 0;
551 static void velocity_init_rx_ring_indexes(struct velocity_info *vptr)
553 vptr->rx.dirty = vptr->rx.filled = vptr->rx.curr = 0;
557 * velocity_rx_reset - handle a receive reset
558 * @vptr: velocity we are resetting
560 * Reset the ownership and status for the receive ring side.
561 * Hand all the receive queue to the NIC.
563 static void velocity_rx_reset(struct velocity_info *vptr)
566 struct mac_regs __iomem *regs = vptr->mac_regs;
567 int i;
569 velocity_init_rx_ring_indexes(vptr);
572 * Init state, all RD entries belong to the NIC
574 for (i = 0; i < vptr->options.numrx; ++i)
575 vptr->rx.ring[i].rdesc0.len |= OWNED_BY_NIC;
577 writew(vptr->options.numrx, &regs->RBRDU);
578 writel(vptr->rx.pool_dma, &regs->RDBaseLo);
579 writew(0, &regs->RDIdx);
580 writew(vptr->options.numrx - 1, &regs->RDCSize);
584 * velocity_get_opt_media_mode - get media selection
585 * @vptr: velocity adapter
587 * Get the media mode stored in EEPROM or module options and load
588 * mii_status accordingly. The requested link state information
589 * is also returned.
591 static u32 velocity_get_opt_media_mode(struct velocity_info *vptr)
593 u32 status = 0;
595 switch (vptr->options.spd_dpx) {
596 case SPD_DPX_AUTO:
597 status = VELOCITY_AUTONEG_ENABLE;
598 break;
599 case SPD_DPX_100_FULL:
600 status = VELOCITY_SPEED_100 | VELOCITY_DUPLEX_FULL;
601 break;
602 case SPD_DPX_10_FULL:
603 status = VELOCITY_SPEED_10 | VELOCITY_DUPLEX_FULL;
604 break;
605 case SPD_DPX_100_HALF:
606 status = VELOCITY_SPEED_100;
607 break;
608 case SPD_DPX_10_HALF:
609 status = VELOCITY_SPEED_10;
610 break;
611 case SPD_DPX_1000_FULL:
612 status = VELOCITY_SPEED_1000 | VELOCITY_DUPLEX_FULL;
613 break;
615 vptr->mii_status = status;
616 return status;
620 * safe_disable_mii_autopoll - autopoll off
621 * @regs: velocity registers
623 * Turn off the autopoll and wait for it to disable on the chip
625 static void safe_disable_mii_autopoll(struct mac_regs __iomem *regs)
627 u16 ww;
629 /* turn off MAUTO */
630 writeb(0, &regs->MIICR);
631 for (ww = 0; ww < W_MAX_TIMEOUT; ww++) {
632 udelay(1);
633 if (BYTE_REG_BITS_IS_ON(MIISR_MIDLE, &regs->MIISR))
634 break;
639 * enable_mii_autopoll - turn on autopolling
640 * @regs: velocity registers
642 * Enable the MII link status autopoll feature on the Velocity
643 * hardware. Wait for it to enable.
645 static void enable_mii_autopoll(struct mac_regs __iomem *regs)
647 int ii;
649 writeb(0, &(regs->MIICR));
650 writeb(MIIADR_SWMPL, &regs->MIIADR);
652 for (ii = 0; ii < W_MAX_TIMEOUT; ii++) {
653 udelay(1);
654 if (BYTE_REG_BITS_IS_ON(MIISR_MIDLE, &regs->MIISR))
655 break;
658 writeb(MIICR_MAUTO, &regs->MIICR);
660 for (ii = 0; ii < W_MAX_TIMEOUT; ii++) {
661 udelay(1);
662 if (!BYTE_REG_BITS_IS_ON(MIISR_MIDLE, &regs->MIISR))
663 break;
669 * velocity_mii_read - read MII data
670 * @regs: velocity registers
671 * @index: MII register index
672 * @data: buffer for received data
674 * Perform a single read of an MII 16bit register. Returns zero
675 * on success or -ETIMEDOUT if the PHY did not respond.
677 static int velocity_mii_read(struct mac_regs __iomem *regs, u8 index, u16 *data)
679 u16 ww;
682 * Disable MIICR_MAUTO, so that mii addr can be set normally
684 safe_disable_mii_autopoll(regs);
686 writeb(index, &regs->MIIADR);
688 BYTE_REG_BITS_ON(MIICR_RCMD, &regs->MIICR);
690 for (ww = 0; ww < W_MAX_TIMEOUT; ww++) {
691 if (!(readb(&regs->MIICR) & MIICR_RCMD))
692 break;
695 *data = readw(&regs->MIIDATA);
697 enable_mii_autopoll(regs);
698 if (ww == W_MAX_TIMEOUT)
699 return -ETIMEDOUT;
700 return 0;
704 * mii_check_media_mode - check media state
705 * @regs: velocity registers
707 * Check the current MII status and determine the link status
708 * accordingly
710 static u32 mii_check_media_mode(struct mac_regs __iomem *regs)
712 u32 status = 0;
713 u16 ANAR;
715 if (!MII_REG_BITS_IS_ON(BMSR_LSTATUS, MII_BMSR, regs))
716 status |= VELOCITY_LINK_FAIL;
718 if (MII_REG_BITS_IS_ON(ADVERTISE_1000FULL, MII_CTRL1000, regs))
719 status |= VELOCITY_SPEED_1000 | VELOCITY_DUPLEX_FULL;
720 else if (MII_REG_BITS_IS_ON(ADVERTISE_1000HALF, MII_CTRL1000, regs))
721 status |= (VELOCITY_SPEED_1000);
722 else {
723 velocity_mii_read(regs, MII_ADVERTISE, &ANAR);
724 if (ANAR & ADVERTISE_100FULL)
725 status |= (VELOCITY_SPEED_100 | VELOCITY_DUPLEX_FULL);
726 else if (ANAR & ADVERTISE_100HALF)
727 status |= VELOCITY_SPEED_100;
728 else if (ANAR & ADVERTISE_10FULL)
729 status |= (VELOCITY_SPEED_10 | VELOCITY_DUPLEX_FULL);
730 else
731 status |= (VELOCITY_SPEED_10);
734 if (MII_REG_BITS_IS_ON(BMCR_ANENABLE, MII_BMCR, regs)) {
735 velocity_mii_read(regs, MII_ADVERTISE, &ANAR);
736 if ((ANAR & (ADVERTISE_100FULL | ADVERTISE_100HALF | ADVERTISE_10FULL | ADVERTISE_10HALF))
737 == (ADVERTISE_100FULL | ADVERTISE_100HALF | ADVERTISE_10FULL | ADVERTISE_10HALF)) {
738 if (MII_REG_BITS_IS_ON(ADVERTISE_1000HALF | ADVERTISE_1000FULL, MII_CTRL1000, regs))
739 status |= VELOCITY_AUTONEG_ENABLE;
743 return status;
747 * velocity_mii_write - write MII data
748 * @regs: velocity registers
749 * @index: MII register index
750 * @data: 16bit data for the MII register
752 * Perform a single write to an MII 16bit register. Returns zero
753 * on success or -ETIMEDOUT if the PHY did not respond.
755 static int velocity_mii_write(struct mac_regs __iomem *regs, u8 mii_addr, u16 data)
757 u16 ww;
760 * Disable MIICR_MAUTO, so that mii addr can be set normally
762 safe_disable_mii_autopoll(regs);
764 /* MII reg offset */
765 writeb(mii_addr, &regs->MIIADR);
766 /* set MII data */
767 writew(data, &regs->MIIDATA);
769 /* turn on MIICR_WCMD */
770 BYTE_REG_BITS_ON(MIICR_WCMD, &regs->MIICR);
772 /* W_MAX_TIMEOUT is the timeout period */
773 for (ww = 0; ww < W_MAX_TIMEOUT; ww++) {
774 udelay(5);
775 if (!(readb(&regs->MIICR) & MIICR_WCMD))
776 break;
778 enable_mii_autopoll(regs);
780 if (ww == W_MAX_TIMEOUT)
781 return -ETIMEDOUT;
782 return 0;
786 * set_mii_flow_control - flow control setup
787 * @vptr: velocity interface
789 * Set up the flow control on this interface according to
790 * the supplied user/eeprom options.
792 static void set_mii_flow_control(struct velocity_info *vptr)
794 /*Enable or Disable PAUSE in ANAR */
795 switch (vptr->options.flow_cntl) {
796 case FLOW_CNTL_TX:
797 MII_REG_BITS_OFF(ADVERTISE_PAUSE_CAP, MII_ADVERTISE, vptr->mac_regs);
798 MII_REG_BITS_ON(ADVERTISE_PAUSE_ASYM, MII_ADVERTISE, vptr->mac_regs);
799 break;
801 case FLOW_CNTL_RX:
802 MII_REG_BITS_ON(ADVERTISE_PAUSE_CAP, MII_ADVERTISE, vptr->mac_regs);
803 MII_REG_BITS_ON(ADVERTISE_PAUSE_ASYM, MII_ADVERTISE, vptr->mac_regs);
804 break;
806 case FLOW_CNTL_TX_RX:
807 MII_REG_BITS_ON(ADVERTISE_PAUSE_CAP, MII_ADVERTISE, vptr->mac_regs);
808 MII_REG_BITS_OFF(ADVERTISE_PAUSE_ASYM, MII_ADVERTISE, vptr->mac_regs);
809 break;
811 case FLOW_CNTL_DISABLE:
812 MII_REG_BITS_OFF(ADVERTISE_PAUSE_CAP, MII_ADVERTISE, vptr->mac_regs);
813 MII_REG_BITS_OFF(ADVERTISE_PAUSE_ASYM, MII_ADVERTISE, vptr->mac_regs);
814 break;
815 default:
816 break;
821 * mii_set_auto_on - autonegotiate on
822 * @vptr: velocity
824 * Enable autonegotation on this interface
826 static void mii_set_auto_on(struct velocity_info *vptr)
828 if (MII_REG_BITS_IS_ON(BMCR_ANENABLE, MII_BMCR, vptr->mac_regs))
829 MII_REG_BITS_ON(BMCR_ANRESTART, MII_BMCR, vptr->mac_regs);
830 else
831 MII_REG_BITS_ON(BMCR_ANENABLE, MII_BMCR, vptr->mac_regs);
834 static u32 check_connection_type(struct mac_regs __iomem *regs)
836 u32 status = 0;
837 u8 PHYSR0;
838 u16 ANAR;
839 PHYSR0 = readb(&regs->PHYSR0);
842 if (!(PHYSR0 & PHYSR0_LINKGD))
843 status|=VELOCITY_LINK_FAIL;
846 if (PHYSR0 & PHYSR0_FDPX)
847 status |= VELOCITY_DUPLEX_FULL;
849 if (PHYSR0 & PHYSR0_SPDG)
850 status |= VELOCITY_SPEED_1000;
851 else if (PHYSR0 & PHYSR0_SPD10)
852 status |= VELOCITY_SPEED_10;
853 else
854 status |= VELOCITY_SPEED_100;
856 if (MII_REG_BITS_IS_ON(BMCR_ANENABLE, MII_BMCR, regs)) {
857 velocity_mii_read(regs, MII_ADVERTISE, &ANAR);
858 if ((ANAR & (ADVERTISE_100FULL | ADVERTISE_100HALF | ADVERTISE_10FULL | ADVERTISE_10HALF))
859 == (ADVERTISE_100FULL | ADVERTISE_100HALF | ADVERTISE_10FULL | ADVERTISE_10HALF)) {
860 if (MII_REG_BITS_IS_ON(ADVERTISE_1000HALF | ADVERTISE_1000FULL, MII_CTRL1000, regs))
861 status |= VELOCITY_AUTONEG_ENABLE;
865 return status;
869 * velocity_set_media_mode - set media mode
870 * @mii_status: old MII link state
872 * Check the media link state and configure the flow control
873 * PHY and also velocity hardware setup accordingly. In particular
874 * we need to set up CD polling and frame bursting.
876 static int velocity_set_media_mode(struct velocity_info *vptr, u32 mii_status)
878 u32 curr_status;
879 struct mac_regs __iomem *regs = vptr->mac_regs;
881 vptr->mii_status = mii_check_media_mode(vptr->mac_regs);
882 curr_status = vptr->mii_status & (~VELOCITY_LINK_FAIL);
884 /* Set mii link status */
885 set_mii_flow_control(vptr);
888 Check if new status is consistent with current status
889 if (((mii_status & curr_status) & VELOCITY_AUTONEG_ENABLE) ||
890 (mii_status==curr_status)) {
891 vptr->mii_status=mii_check_media_mode(vptr->mac_regs);
892 vptr->mii_status=check_connection_type(vptr->mac_regs);
893 VELOCITY_PRT(MSG_LEVEL_INFO, "Velocity link no change\n");
894 return 0;
898 if (PHYID_GET_PHY_ID(vptr->phy_id) == PHYID_CICADA_CS8201)
899 MII_REG_BITS_ON(AUXCR_MDPPS, MII_NCONFIG, vptr->mac_regs);
902 * If connection type is AUTO
904 if (mii_status & VELOCITY_AUTONEG_ENABLE) {
905 VELOCITY_PRT(MSG_LEVEL_INFO, "Velocity is AUTO mode\n");
906 /* clear force MAC mode bit */
907 BYTE_REG_BITS_OFF(CHIPGCR_FCMODE, &regs->CHIPGCR);
908 /* set duplex mode of MAC according to duplex mode of MII */
909 MII_REG_BITS_ON(ADVERTISE_100FULL | ADVERTISE_100HALF | ADVERTISE_10FULL | ADVERTISE_10HALF, MII_ADVERTISE, vptr->mac_regs);
910 MII_REG_BITS_ON(ADVERTISE_1000FULL | ADVERTISE_1000HALF, MII_CTRL1000, vptr->mac_regs);
911 MII_REG_BITS_ON(BMCR_SPEED1000, MII_BMCR, vptr->mac_regs);
913 /* enable AUTO-NEGO mode */
914 mii_set_auto_on(vptr);
915 } else {
916 u16 CTRL1000;
917 u16 ANAR;
918 u8 CHIPGCR;
921 * 1. if it's 3119, disable frame bursting in halfduplex mode
922 * and enable it in fullduplex mode
923 * 2. set correct MII/GMII and half/full duplex mode in CHIPGCR
924 * 3. only enable CD heart beat counter in 10HD mode
927 /* set force MAC mode bit */
928 BYTE_REG_BITS_ON(CHIPGCR_FCMODE, &regs->CHIPGCR);
930 CHIPGCR = readb(&regs->CHIPGCR);
932 if (mii_status & VELOCITY_SPEED_1000)
933 CHIPGCR |= CHIPGCR_FCGMII;
934 else
935 CHIPGCR &= ~CHIPGCR_FCGMII;
937 if (mii_status & VELOCITY_DUPLEX_FULL) {
938 CHIPGCR |= CHIPGCR_FCFDX;
939 writeb(CHIPGCR, &regs->CHIPGCR);
940 VELOCITY_PRT(MSG_LEVEL_INFO, "set Velocity to forced full mode\n");
941 if (vptr->rev_id < REV_ID_VT3216_A0)
942 BYTE_REG_BITS_OFF(TCR_TB2BDIS, &regs->TCR);
943 } else {
944 CHIPGCR &= ~CHIPGCR_FCFDX;
945 VELOCITY_PRT(MSG_LEVEL_INFO, "set Velocity to forced half mode\n");
946 writeb(CHIPGCR, &regs->CHIPGCR);
947 if (vptr->rev_id < REV_ID_VT3216_A0)
948 BYTE_REG_BITS_ON(TCR_TB2BDIS, &regs->TCR);
951 velocity_mii_read(vptr->mac_regs, MII_CTRL1000, &CTRL1000);
952 CTRL1000 &= ~(ADVERTISE_1000FULL | ADVERTISE_1000HALF);
953 if ((mii_status & VELOCITY_SPEED_1000) &&
954 (mii_status & VELOCITY_DUPLEX_FULL)) {
955 CTRL1000 |= ADVERTISE_1000FULL;
957 velocity_mii_write(vptr->mac_regs, MII_CTRL1000, CTRL1000);
959 if (!(mii_status & VELOCITY_DUPLEX_FULL) && (mii_status & VELOCITY_SPEED_10))
960 BYTE_REG_BITS_OFF(TESTCFG_HBDIS, &regs->TESTCFG);
961 else
962 BYTE_REG_BITS_ON(TESTCFG_HBDIS, &regs->TESTCFG);
964 /* MII_REG_BITS_OFF(BMCR_SPEED1000, MII_BMCR, vptr->mac_regs); */
965 velocity_mii_read(vptr->mac_regs, MII_ADVERTISE, &ANAR);
966 ANAR &= (~(ADVERTISE_100FULL | ADVERTISE_100HALF | ADVERTISE_10FULL | ADVERTISE_10HALF));
967 if (mii_status & VELOCITY_SPEED_100) {
968 if (mii_status & VELOCITY_DUPLEX_FULL)
969 ANAR |= ADVERTISE_100FULL;
970 else
971 ANAR |= ADVERTISE_100HALF;
972 } else if (mii_status & VELOCITY_SPEED_10) {
973 if (mii_status & VELOCITY_DUPLEX_FULL)
974 ANAR |= ADVERTISE_10FULL;
975 else
976 ANAR |= ADVERTISE_10HALF;
978 velocity_mii_write(vptr->mac_regs, MII_ADVERTISE, ANAR);
979 /* enable AUTO-NEGO mode */
980 mii_set_auto_on(vptr);
981 /* MII_REG_BITS_ON(BMCR_ANENABLE, MII_BMCR, vptr->mac_regs); */
983 /* vptr->mii_status=mii_check_media_mode(vptr->mac_regs); */
984 /* vptr->mii_status=check_connection_type(vptr->mac_regs); */
985 return VELOCITY_LINK_CHANGE;
989 * velocity_print_link_status - link status reporting
990 * @vptr: velocity to report on
992 * Turn the link status of the velocity card into a kernel log
993 * description of the new link state, detailing speed and duplex
994 * status
996 static void velocity_print_link_status(struct velocity_info *vptr)
999 if (vptr->mii_status & VELOCITY_LINK_FAIL) {
1000 VELOCITY_PRT(MSG_LEVEL_INFO, KERN_NOTICE "%s: failed to detect cable link\n", vptr->netdev->name);
1001 } else if (vptr->options.spd_dpx == SPD_DPX_AUTO) {
1002 VELOCITY_PRT(MSG_LEVEL_INFO, KERN_NOTICE "%s: Link auto-negotiation", vptr->netdev->name);
1004 if (vptr->mii_status & VELOCITY_SPEED_1000)
1005 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 1000M bps");
1006 else if (vptr->mii_status & VELOCITY_SPEED_100)
1007 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 100M bps");
1008 else
1009 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 10M bps");
1011 if (vptr->mii_status & VELOCITY_DUPLEX_FULL)
1012 VELOCITY_PRT(MSG_LEVEL_INFO, " full duplex\n");
1013 else
1014 VELOCITY_PRT(MSG_LEVEL_INFO, " half duplex\n");
1015 } else {
1016 VELOCITY_PRT(MSG_LEVEL_INFO, KERN_NOTICE "%s: Link forced", vptr->netdev->name);
1017 switch (vptr->options.spd_dpx) {
1018 case SPD_DPX_1000_FULL:
1019 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 1000M bps full duplex\n");
1020 break;
1021 case SPD_DPX_100_HALF:
1022 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 100M bps half duplex\n");
1023 break;
1024 case SPD_DPX_100_FULL:
1025 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 100M bps full duplex\n");
1026 break;
1027 case SPD_DPX_10_HALF:
1028 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 10M bps half duplex\n");
1029 break;
1030 case SPD_DPX_10_FULL:
1031 VELOCITY_PRT(MSG_LEVEL_INFO, " speed 10M bps full duplex\n");
1032 break;
1033 default:
1034 break;
1040 * enable_flow_control_ability - flow control
1041 * @vptr: veloity to configure
1043 * Set up flow control according to the flow control options
1044 * determined by the eeprom/configuration.
1046 static void enable_flow_control_ability(struct velocity_info *vptr)
1049 struct mac_regs __iomem *regs = vptr->mac_regs;
1051 switch (vptr->options.flow_cntl) {
1053 case FLOW_CNTL_DEFAULT:
1054 if (BYTE_REG_BITS_IS_ON(PHYSR0_RXFLC, &regs->PHYSR0))
1055 writel(CR0_FDXRFCEN, &regs->CR0Set);
1056 else
1057 writel(CR0_FDXRFCEN, &regs->CR0Clr);
1059 if (BYTE_REG_BITS_IS_ON(PHYSR0_TXFLC, &regs->PHYSR0))
1060 writel(CR0_FDXTFCEN, &regs->CR0Set);
1061 else
1062 writel(CR0_FDXTFCEN, &regs->CR0Clr);
1063 break;
1065 case FLOW_CNTL_TX:
1066 writel(CR0_FDXTFCEN, &regs->CR0Set);
1067 writel(CR0_FDXRFCEN, &regs->CR0Clr);
1068 break;
1070 case FLOW_CNTL_RX:
1071 writel(CR0_FDXRFCEN, &regs->CR0Set);
1072 writel(CR0_FDXTFCEN, &regs->CR0Clr);
1073 break;
1075 case FLOW_CNTL_TX_RX:
1076 writel(CR0_FDXTFCEN, &regs->CR0Set);
1077 writel(CR0_FDXRFCEN, &regs->CR0Set);
1078 break;
1080 case FLOW_CNTL_DISABLE:
1081 writel(CR0_FDXRFCEN, &regs->CR0Clr);
1082 writel(CR0_FDXTFCEN, &regs->CR0Clr);
1083 break;
1085 default:
1086 break;
1092 * velocity_soft_reset - soft reset
1093 * @vptr: velocity to reset
1095 * Kick off a soft reset of the velocity adapter and then poll
1096 * until the reset sequence has completed before returning.
1098 static int velocity_soft_reset(struct velocity_info *vptr)
1100 struct mac_regs __iomem *regs = vptr->mac_regs;
1101 int i = 0;
1103 writel(CR0_SFRST, &regs->CR0Set);
1105 for (i = 0; i < W_MAX_TIMEOUT; i++) {
1106 udelay(5);
1107 if (!DWORD_REG_BITS_IS_ON(CR0_SFRST, &regs->CR0Set))
1108 break;
1111 if (i == W_MAX_TIMEOUT) {
1112 writel(CR0_FORSRST, &regs->CR0Set);
1113 /* FIXME: PCI POSTING */
1114 /* delay 2ms */
1115 mdelay(2);
1117 return 0;
1121 * velocity_set_multi - filter list change callback
1122 * @dev: network device
1124 * Called by the network layer when the filter lists need to change
1125 * for a velocity adapter. Reload the CAMs with the new address
1126 * filter ruleset.
1128 static void velocity_set_multi(struct net_device *dev)
1130 struct velocity_info *vptr = netdev_priv(dev);
1131 struct mac_regs __iomem *regs = vptr->mac_regs;
1132 u8 rx_mode;
1133 int i;
1134 struct netdev_hw_addr *ha;
1136 if (dev->flags & IFF_PROMISC) { /* Set promiscuous. */
1137 writel(0xffffffff, &regs->MARCAM[0]);
1138 writel(0xffffffff, &regs->MARCAM[4]);
1139 rx_mode = (RCR_AM | RCR_AB | RCR_PROM);
1140 } else if ((netdev_mc_count(dev) > vptr->multicast_limit) ||
1141 (dev->flags & IFF_ALLMULTI)) {
1142 writel(0xffffffff, &regs->MARCAM[0]);
1143 writel(0xffffffff, &regs->MARCAM[4]);
1144 rx_mode = (RCR_AM | RCR_AB);
1145 } else {
1146 int offset = MCAM_SIZE - vptr->multicast_limit;
1147 mac_get_cam_mask(regs, vptr->mCAMmask);
1149 i = 0;
1150 netdev_for_each_mc_addr(ha, dev) {
1151 mac_set_cam(regs, i + offset, ha->addr);
1152 vptr->mCAMmask[(offset + i) / 8] |= 1 << ((offset + i) & 7);
1153 i++;
1156 mac_set_cam_mask(regs, vptr->mCAMmask);
1157 rx_mode = RCR_AM | RCR_AB | RCR_AP;
1159 if (dev->mtu > 1500)
1160 rx_mode |= RCR_AL;
1162 BYTE_REG_BITS_ON(rx_mode, &regs->RCR);
1167 * MII access , media link mode setting functions
1171 * mii_init - set up MII
1172 * @vptr: velocity adapter
1173 * @mii_status: links tatus
1175 * Set up the PHY for the current link state.
1177 static void mii_init(struct velocity_info *vptr, u32 mii_status)
1179 u16 BMCR;
1181 switch (PHYID_GET_PHY_ID(vptr->phy_id)) {
1182 case PHYID_ICPLUS_IP101A:
1183 MII_REG_BITS_ON((ADVERTISE_PAUSE_ASYM | ADVERTISE_PAUSE_CAP),
1184 MII_ADVERTISE, vptr->mac_regs);
1185 if (vptr->mii_status & VELOCITY_DUPLEX_FULL)
1186 MII_REG_BITS_ON(TCSR_ECHODIS, MII_SREVISION,
1187 vptr->mac_regs);
1188 else
1189 MII_REG_BITS_OFF(TCSR_ECHODIS, MII_SREVISION,
1190 vptr->mac_regs);
1191 MII_REG_BITS_ON(PLED_LALBE, MII_TPISTATUS, vptr->mac_regs);
1192 break;
1193 case PHYID_CICADA_CS8201:
1195 * Reset to hardware default
1197 MII_REG_BITS_OFF((ADVERTISE_PAUSE_ASYM | ADVERTISE_PAUSE_CAP), MII_ADVERTISE, vptr->mac_regs);
1199 * Turn on ECHODIS bit in NWay-forced full mode and turn it
1200 * off it in NWay-forced half mode for NWay-forced v.s.
1201 * legacy-forced issue.
1203 if (vptr->mii_status & VELOCITY_DUPLEX_FULL)
1204 MII_REG_BITS_ON(TCSR_ECHODIS, MII_SREVISION, vptr->mac_regs);
1205 else
1206 MII_REG_BITS_OFF(TCSR_ECHODIS, MII_SREVISION, vptr->mac_regs);
1208 * Turn on Link/Activity LED enable bit for CIS8201
1210 MII_REG_BITS_ON(PLED_LALBE, MII_TPISTATUS, vptr->mac_regs);
1211 break;
1212 case PHYID_VT3216_32BIT:
1213 case PHYID_VT3216_64BIT:
1215 * Reset to hardware default
1217 MII_REG_BITS_ON((ADVERTISE_PAUSE_ASYM | ADVERTISE_PAUSE_CAP), MII_ADVERTISE, vptr->mac_regs);
1219 * Turn on ECHODIS bit in NWay-forced full mode and turn it
1220 * off it in NWay-forced half mode for NWay-forced v.s.
1221 * legacy-forced issue
1223 if (vptr->mii_status & VELOCITY_DUPLEX_FULL)
1224 MII_REG_BITS_ON(TCSR_ECHODIS, MII_SREVISION, vptr->mac_regs);
1225 else
1226 MII_REG_BITS_OFF(TCSR_ECHODIS, MII_SREVISION, vptr->mac_regs);
1227 break;
1229 case PHYID_MARVELL_1000:
1230 case PHYID_MARVELL_1000S:
1232 * Assert CRS on Transmit
1234 MII_REG_BITS_ON(PSCR_ACRSTX, MII_REG_PSCR, vptr->mac_regs);
1236 * Reset to hardware default
1238 MII_REG_BITS_ON((ADVERTISE_PAUSE_ASYM | ADVERTISE_PAUSE_CAP), MII_ADVERTISE, vptr->mac_regs);
1239 break;
1240 default:
1243 velocity_mii_read(vptr->mac_regs, MII_BMCR, &BMCR);
1244 if (BMCR & BMCR_ISOLATE) {
1245 BMCR &= ~BMCR_ISOLATE;
1246 velocity_mii_write(vptr->mac_regs, MII_BMCR, BMCR);
1251 * setup_queue_timers - Setup interrupt timers
1253 * Setup interrupt frequency during suppression (timeout if the frame
1254 * count isn't filled).
1256 static void setup_queue_timers(struct velocity_info *vptr)
1258 /* Only for newer revisions */
1259 if (vptr->rev_id >= REV_ID_VT3216_A0) {
1260 u8 txqueue_timer = 0;
1261 u8 rxqueue_timer = 0;
1263 if (vptr->mii_status & (VELOCITY_SPEED_1000 |
1264 VELOCITY_SPEED_100)) {
1265 txqueue_timer = vptr->options.txqueue_timer;
1266 rxqueue_timer = vptr->options.rxqueue_timer;
1269 writeb(txqueue_timer, &vptr->mac_regs->TQETMR);
1270 writeb(rxqueue_timer, &vptr->mac_regs->RQETMR);
1275 * setup_adaptive_interrupts - Setup interrupt suppression
1277 * @vptr velocity adapter
1279 * The velocity is able to suppress interrupt during high interrupt load.
1280 * This function turns on that feature.
1282 static void setup_adaptive_interrupts(struct velocity_info *vptr)
1284 struct mac_regs __iomem *regs = vptr->mac_regs;
1285 u16 tx_intsup = vptr->options.tx_intsup;
1286 u16 rx_intsup = vptr->options.rx_intsup;
1288 /* Setup default interrupt mask (will be changed below) */
1289 vptr->int_mask = INT_MASK_DEF;
1291 /* Set Tx Interrupt Suppression Threshold */
1292 writeb(CAMCR_PS0, &regs->CAMCR);
1293 if (tx_intsup != 0) {
1294 vptr->int_mask &= ~(ISR_PTXI | ISR_PTX0I | ISR_PTX1I |
1295 ISR_PTX2I | ISR_PTX3I);
1296 writew(tx_intsup, &regs->ISRCTL);
1297 } else
1298 writew(ISRCTL_TSUPDIS, &regs->ISRCTL);
1300 /* Set Rx Interrupt Suppression Threshold */
1301 writeb(CAMCR_PS1, &regs->CAMCR);
1302 if (rx_intsup != 0) {
1303 vptr->int_mask &= ~ISR_PRXI;
1304 writew(rx_intsup, &regs->ISRCTL);
1305 } else
1306 writew(ISRCTL_RSUPDIS, &regs->ISRCTL);
1308 /* Select page to interrupt hold timer */
1309 writeb(0, &regs->CAMCR);
1313 * velocity_init_registers - initialise MAC registers
1314 * @vptr: velocity to init
1315 * @type: type of initialisation (hot or cold)
1317 * Initialise the MAC on a reset or on first set up on the
1318 * hardware.
1320 static void velocity_init_registers(struct velocity_info *vptr,
1321 enum velocity_init_type type)
1323 struct mac_regs __iomem *regs = vptr->mac_regs;
1324 struct net_device *netdev = vptr->netdev;
1325 int i, mii_status;
1327 mac_wol_reset(regs);
1329 switch (type) {
1330 case VELOCITY_INIT_RESET:
1331 case VELOCITY_INIT_WOL:
1333 netif_stop_queue(netdev);
1336 * Reset RX to prevent RX pointer not on the 4X location
1338 velocity_rx_reset(vptr);
1339 mac_rx_queue_run(regs);
1340 mac_rx_queue_wake(regs);
1342 mii_status = velocity_get_opt_media_mode(vptr);
1343 if (velocity_set_media_mode(vptr, mii_status) != VELOCITY_LINK_CHANGE) {
1344 velocity_print_link_status(vptr);
1345 if (!(vptr->mii_status & VELOCITY_LINK_FAIL))
1346 netif_wake_queue(netdev);
1349 enable_flow_control_ability(vptr);
1351 mac_clear_isr(regs);
1352 writel(CR0_STOP, &regs->CR0Clr);
1353 writel((CR0_DPOLL | CR0_TXON | CR0_RXON | CR0_STRT),
1354 &regs->CR0Set);
1356 break;
1358 case VELOCITY_INIT_COLD:
1359 default:
1361 * Do reset
1363 velocity_soft_reset(vptr);
1364 mdelay(5);
1366 if (!vptr->no_eeprom) {
1367 mac_eeprom_reload(regs);
1368 for (i = 0; i < 6; i++)
1369 writeb(netdev->dev_addr[i], regs->PAR + i);
1373 * clear Pre_ACPI bit.
1375 BYTE_REG_BITS_OFF(CFGA_PACPI, &(regs->CFGA));
1376 mac_set_rx_thresh(regs, vptr->options.rx_thresh);
1377 mac_set_dma_length(regs, vptr->options.DMA_length);
1379 writeb(WOLCFG_SAM | WOLCFG_SAB, &regs->WOLCFGSet);
1381 * Back off algorithm use original IEEE standard
1383 BYTE_REG_BITS_SET(CFGB_OFSET, (CFGB_CRANDOM | CFGB_CAP | CFGB_MBA | CFGB_BAKOPT), &regs->CFGB);
1386 * Init CAM filter
1388 velocity_init_cam_filter(vptr);
1391 * Set packet filter: Receive directed and broadcast address
1393 velocity_set_multi(netdev);
1396 * Enable MII auto-polling
1398 enable_mii_autopoll(regs);
1400 setup_adaptive_interrupts(vptr);
1402 writel(vptr->rx.pool_dma, &regs->RDBaseLo);
1403 writew(vptr->options.numrx - 1, &regs->RDCSize);
1404 mac_rx_queue_run(regs);
1405 mac_rx_queue_wake(regs);
1407 writew(vptr->options.numtx - 1, &regs->TDCSize);
1409 for (i = 0; i < vptr->tx.numq; i++) {
1410 writel(vptr->tx.pool_dma[i], &regs->TDBaseLo[i]);
1411 mac_tx_queue_run(regs, i);
1414 init_flow_control_register(vptr);
1416 writel(CR0_STOP, &regs->CR0Clr);
1417 writel((CR0_DPOLL | CR0_TXON | CR0_RXON | CR0_STRT), &regs->CR0Set);
1419 mii_status = velocity_get_opt_media_mode(vptr);
1420 netif_stop_queue(netdev);
1422 mii_init(vptr, mii_status);
1424 if (velocity_set_media_mode(vptr, mii_status) != VELOCITY_LINK_CHANGE) {
1425 velocity_print_link_status(vptr);
1426 if (!(vptr->mii_status & VELOCITY_LINK_FAIL))
1427 netif_wake_queue(netdev);
1430 enable_flow_control_ability(vptr);
1431 mac_hw_mibs_init(regs);
1432 mac_write_int_mask(vptr->int_mask, regs);
1433 mac_clear_isr(regs);
1438 static void velocity_give_many_rx_descs(struct velocity_info *vptr)
1440 struct mac_regs __iomem *regs = vptr->mac_regs;
1441 int avail, dirty, unusable;
1444 * RD number must be equal to 4X per hardware spec
1445 * (programming guide rev 1.20, p.13)
1447 if (vptr->rx.filled < 4)
1448 return;
1450 wmb();
1452 unusable = vptr->rx.filled & 0x0003;
1453 dirty = vptr->rx.dirty - unusable;
1454 for (avail = vptr->rx.filled & 0xfffc; avail; avail--) {
1455 dirty = (dirty > 0) ? dirty - 1 : vptr->options.numrx - 1;
1456 vptr->rx.ring[dirty].rdesc0.len |= OWNED_BY_NIC;
1459 writew(vptr->rx.filled & 0xfffc, &regs->RBRDU);
1460 vptr->rx.filled = unusable;
1464 * velocity_init_dma_rings - set up DMA rings
1465 * @vptr: Velocity to set up
1467 * Allocate PCI mapped DMA rings for the receive and transmit layer
1468 * to use.
1470 static int velocity_init_dma_rings(struct velocity_info *vptr)
1472 struct velocity_opt *opt = &vptr->options;
1473 const unsigned int rx_ring_size = opt->numrx * sizeof(struct rx_desc);
1474 const unsigned int tx_ring_size = opt->numtx * sizeof(struct tx_desc);
1475 dma_addr_t pool_dma;
1476 void *pool;
1477 unsigned int i;
1480 * Allocate all RD/TD rings a single pool.
1482 * dma_alloc_coherent() fulfills the requirement for 64 bytes
1483 * alignment
1485 pool = dma_alloc_coherent(vptr->dev, tx_ring_size * vptr->tx.numq +
1486 rx_ring_size, &pool_dma, GFP_ATOMIC);
1487 if (!pool) {
1488 dev_err(vptr->dev, "%s : DMA memory allocation failed.\n",
1489 vptr->netdev->name);
1490 return -ENOMEM;
1493 vptr->rx.ring = pool;
1494 vptr->rx.pool_dma = pool_dma;
1496 pool += rx_ring_size;
1497 pool_dma += rx_ring_size;
1499 for (i = 0; i < vptr->tx.numq; i++) {
1500 vptr->tx.rings[i] = pool;
1501 vptr->tx.pool_dma[i] = pool_dma;
1502 pool += tx_ring_size;
1503 pool_dma += tx_ring_size;
1506 return 0;
1509 static void velocity_set_rxbufsize(struct velocity_info *vptr, int mtu)
1511 vptr->rx.buf_sz = (mtu <= ETH_DATA_LEN) ? PKT_BUF_SZ : mtu + 32;
1515 * velocity_alloc_rx_buf - allocate aligned receive buffer
1516 * @vptr: velocity
1517 * @idx: ring index
1519 * Allocate a new full sized buffer for the reception of a frame and
1520 * map it into PCI space for the hardware to use. The hardware
1521 * requires *64* byte alignment of the buffer which makes life
1522 * less fun than would be ideal.
1524 static int velocity_alloc_rx_buf(struct velocity_info *vptr, int idx)
1526 struct rx_desc *rd = &(vptr->rx.ring[idx]);
1527 struct velocity_rd_info *rd_info = &(vptr->rx.info[idx]);
1529 rd_info->skb = netdev_alloc_skb(vptr->netdev, vptr->rx.buf_sz + 64);
1530 if (rd_info->skb == NULL)
1531 return -ENOMEM;
1534 * Do the gymnastics to get the buffer head for data at
1535 * 64byte alignment.
1537 skb_reserve(rd_info->skb,
1538 64 - ((unsigned long) rd_info->skb->data & 63));
1539 rd_info->skb_dma = dma_map_single(vptr->dev, rd_info->skb->data,
1540 vptr->rx.buf_sz, DMA_FROM_DEVICE);
1543 * Fill in the descriptor to match
1546 *((u32 *) & (rd->rdesc0)) = 0;
1547 rd->size = cpu_to_le16(vptr->rx.buf_sz) | RX_INTEN;
1548 rd->pa_low = cpu_to_le32(rd_info->skb_dma);
1549 rd->pa_high = 0;
1550 return 0;
1554 static int velocity_rx_refill(struct velocity_info *vptr)
1556 int dirty = vptr->rx.dirty, done = 0;
1558 do {
1559 struct rx_desc *rd = vptr->rx.ring + dirty;
1561 /* Fine for an all zero Rx desc at init time as well */
1562 if (rd->rdesc0.len & OWNED_BY_NIC)
1563 break;
1565 if (!vptr->rx.info[dirty].skb) {
1566 if (velocity_alloc_rx_buf(vptr, dirty) < 0)
1567 break;
1569 done++;
1570 dirty = (dirty < vptr->options.numrx - 1) ? dirty + 1 : 0;
1571 } while (dirty != vptr->rx.curr);
1573 if (done) {
1574 vptr->rx.dirty = dirty;
1575 vptr->rx.filled += done;
1578 return done;
1582 * velocity_free_rd_ring - free receive ring
1583 * @vptr: velocity to clean up
1585 * Free the receive buffers for each ring slot and any
1586 * attached socket buffers that need to go away.
1588 static void velocity_free_rd_ring(struct velocity_info *vptr)
1590 int i;
1592 if (vptr->rx.info == NULL)
1593 return;
1595 for (i = 0; i < vptr->options.numrx; i++) {
1596 struct velocity_rd_info *rd_info = &(vptr->rx.info[i]);
1597 struct rx_desc *rd = vptr->rx.ring + i;
1599 memset(rd, 0, sizeof(*rd));
1601 if (!rd_info->skb)
1602 continue;
1603 dma_unmap_single(vptr->dev, rd_info->skb_dma, vptr->rx.buf_sz,
1604 DMA_FROM_DEVICE);
1605 rd_info->skb_dma = 0;
1607 dev_kfree_skb(rd_info->skb);
1608 rd_info->skb = NULL;
1611 kfree(vptr->rx.info);
1612 vptr->rx.info = NULL;
1616 * velocity_init_rd_ring - set up receive ring
1617 * @vptr: velocity to configure
1619 * Allocate and set up the receive buffers for each ring slot and
1620 * assign them to the network adapter.
1622 static int velocity_init_rd_ring(struct velocity_info *vptr)
1624 int ret = -ENOMEM;
1626 vptr->rx.info = kcalloc(vptr->options.numrx,
1627 sizeof(struct velocity_rd_info), GFP_KERNEL);
1628 if (!vptr->rx.info)
1629 goto out;
1631 velocity_init_rx_ring_indexes(vptr);
1633 if (velocity_rx_refill(vptr) != vptr->options.numrx) {
1634 VELOCITY_PRT(MSG_LEVEL_ERR, KERN_ERR
1635 "%s: failed to allocate RX buffer.\n", vptr->netdev->name);
1636 velocity_free_rd_ring(vptr);
1637 goto out;
1640 ret = 0;
1641 out:
1642 return ret;
1646 * velocity_init_td_ring - set up transmit ring
1647 * @vptr: velocity
1649 * Set up the transmit ring and chain the ring pointers together.
1650 * Returns zero on success or a negative posix errno code for
1651 * failure.
1653 static int velocity_init_td_ring(struct velocity_info *vptr)
1655 int j;
1657 /* Init the TD ring entries */
1658 for (j = 0; j < vptr->tx.numq; j++) {
1660 vptr->tx.infos[j] = kcalloc(vptr->options.numtx,
1661 sizeof(struct velocity_td_info),
1662 GFP_KERNEL);
1663 if (!vptr->tx.infos[j]) {
1664 while (--j >= 0)
1665 kfree(vptr->tx.infos[j]);
1666 return -ENOMEM;
1669 vptr->tx.tail[j] = vptr->tx.curr[j] = vptr->tx.used[j] = 0;
1671 return 0;
1675 * velocity_free_dma_rings - free PCI ring pointers
1676 * @vptr: Velocity to free from
1678 * Clean up the PCI ring buffers allocated to this velocity.
1680 static void velocity_free_dma_rings(struct velocity_info *vptr)
1682 const int size = vptr->options.numrx * sizeof(struct rx_desc) +
1683 vptr->options.numtx * sizeof(struct tx_desc) * vptr->tx.numq;
1685 dma_free_coherent(vptr->dev, size, vptr->rx.ring, vptr->rx.pool_dma);
1688 static int velocity_init_rings(struct velocity_info *vptr, int mtu)
1690 int ret;
1692 velocity_set_rxbufsize(vptr, mtu);
1694 ret = velocity_init_dma_rings(vptr);
1695 if (ret < 0)
1696 goto out;
1698 ret = velocity_init_rd_ring(vptr);
1699 if (ret < 0)
1700 goto err_free_dma_rings_0;
1702 ret = velocity_init_td_ring(vptr);
1703 if (ret < 0)
1704 goto err_free_rd_ring_1;
1705 out:
1706 return ret;
1708 err_free_rd_ring_1:
1709 velocity_free_rd_ring(vptr);
1710 err_free_dma_rings_0:
1711 velocity_free_dma_rings(vptr);
1712 goto out;
1716 * velocity_free_tx_buf - free transmit buffer
1717 * @vptr: velocity
1718 * @tdinfo: buffer
1720 * Release an transmit buffer. If the buffer was preallocated then
1721 * recycle it, if not then unmap the buffer.
1723 static void velocity_free_tx_buf(struct velocity_info *vptr,
1724 struct velocity_td_info *tdinfo, struct tx_desc *td)
1726 struct sk_buff *skb = tdinfo->skb;
1727 int i;
1730 * Don't unmap the pre-allocated tx_bufs
1732 for (i = 0; i < tdinfo->nskb_dma; i++) {
1733 size_t pktlen = max_t(size_t, skb->len, ETH_ZLEN);
1735 /* For scatter-gather */
1736 if (skb_shinfo(skb)->nr_frags > 0)
1737 pktlen = max_t(size_t, pktlen,
1738 td->td_buf[i].size & ~TD_QUEUE);
1740 dma_unmap_single(vptr->dev, tdinfo->skb_dma[i],
1741 le16_to_cpu(pktlen), DMA_TO_DEVICE);
1743 dev_kfree_skb_irq(skb);
1744 tdinfo->skb = NULL;
1748 * FIXME: could we merge this with velocity_free_tx_buf ?
1750 static void velocity_free_td_ring_entry(struct velocity_info *vptr,
1751 int q, int n)
1753 struct velocity_td_info *td_info = &(vptr->tx.infos[q][n]);
1754 int i;
1756 if (td_info == NULL)
1757 return;
1759 if (td_info->skb) {
1760 for (i = 0; i < td_info->nskb_dma; i++) {
1761 if (td_info->skb_dma[i]) {
1762 dma_unmap_single(vptr->dev, td_info->skb_dma[i],
1763 td_info->skb->len, DMA_TO_DEVICE);
1764 td_info->skb_dma[i] = 0;
1767 dev_kfree_skb(td_info->skb);
1768 td_info->skb = NULL;
1773 * velocity_free_td_ring - free td ring
1774 * @vptr: velocity
1776 * Free up the transmit ring for this particular velocity adapter.
1777 * We free the ring contents but not the ring itself.
1779 static void velocity_free_td_ring(struct velocity_info *vptr)
1781 int i, j;
1783 for (j = 0; j < vptr->tx.numq; j++) {
1784 if (vptr->tx.infos[j] == NULL)
1785 continue;
1786 for (i = 0; i < vptr->options.numtx; i++)
1787 velocity_free_td_ring_entry(vptr, j, i);
1789 kfree(vptr->tx.infos[j]);
1790 vptr->tx.infos[j] = NULL;
1794 static void velocity_free_rings(struct velocity_info *vptr)
1796 velocity_free_td_ring(vptr);
1797 velocity_free_rd_ring(vptr);
1798 velocity_free_dma_rings(vptr);
1802 * velocity_error - handle error from controller
1803 * @vptr: velocity
1804 * @status: card status
1806 * Process an error report from the hardware and attempt to recover
1807 * the card itself. At the moment we cannot recover from some
1808 * theoretically impossible errors but this could be fixed using
1809 * the pci_device_failed logic to bounce the hardware
1812 static void velocity_error(struct velocity_info *vptr, int status)
1815 if (status & ISR_TXSTLI) {
1816 struct mac_regs __iomem *regs = vptr->mac_regs;
1818 printk(KERN_ERR "TD structure error TDindex=%hx\n", readw(&regs->TDIdx[0]));
1819 BYTE_REG_BITS_ON(TXESR_TDSTR, &regs->TXESR);
1820 writew(TRDCSR_RUN, &regs->TDCSRClr);
1821 netif_stop_queue(vptr->netdev);
1823 /* FIXME: port over the pci_device_failed code and use it
1824 here */
1827 if (status & ISR_SRCI) {
1828 struct mac_regs __iomem *regs = vptr->mac_regs;
1829 int linked;
1831 if (vptr->options.spd_dpx == SPD_DPX_AUTO) {
1832 vptr->mii_status = check_connection_type(regs);
1835 * If it is a 3119, disable frame bursting in
1836 * halfduplex mode and enable it in fullduplex
1837 * mode
1839 if (vptr->rev_id < REV_ID_VT3216_A0) {
1840 if (vptr->mii_status & VELOCITY_DUPLEX_FULL)
1841 BYTE_REG_BITS_ON(TCR_TB2BDIS, &regs->TCR);
1842 else
1843 BYTE_REG_BITS_OFF(TCR_TB2BDIS, &regs->TCR);
1846 * Only enable CD heart beat counter in 10HD mode
1848 if (!(vptr->mii_status & VELOCITY_DUPLEX_FULL) && (vptr->mii_status & VELOCITY_SPEED_10))
1849 BYTE_REG_BITS_OFF(TESTCFG_HBDIS, &regs->TESTCFG);
1850 else
1851 BYTE_REG_BITS_ON(TESTCFG_HBDIS, &regs->TESTCFG);
1853 setup_queue_timers(vptr);
1856 * Get link status from PHYSR0
1858 linked = readb(&regs->PHYSR0) & PHYSR0_LINKGD;
1860 if (linked) {
1861 vptr->mii_status &= ~VELOCITY_LINK_FAIL;
1862 netif_carrier_on(vptr->netdev);
1863 } else {
1864 vptr->mii_status |= VELOCITY_LINK_FAIL;
1865 netif_carrier_off(vptr->netdev);
1868 velocity_print_link_status(vptr);
1869 enable_flow_control_ability(vptr);
1872 * Re-enable auto-polling because SRCI will disable
1873 * auto-polling
1876 enable_mii_autopoll(regs);
1878 if (vptr->mii_status & VELOCITY_LINK_FAIL)
1879 netif_stop_queue(vptr->netdev);
1880 else
1881 netif_wake_queue(vptr->netdev);
1884 if (status & ISR_MIBFI)
1885 velocity_update_hw_mibs(vptr);
1886 if (status & ISR_LSTEI)
1887 mac_rx_queue_wake(vptr->mac_regs);
1891 * tx_srv - transmit interrupt service
1892 * @vptr; Velocity
1894 * Scan the queues looking for transmitted packets that
1895 * we can complete and clean up. Update any statistics as
1896 * necessary/
1898 static int velocity_tx_srv(struct velocity_info *vptr)
1900 struct tx_desc *td;
1901 int qnum;
1902 int full = 0;
1903 int idx;
1904 int works = 0;
1905 struct velocity_td_info *tdinfo;
1906 struct net_device_stats *stats = &vptr->netdev->stats;
1908 for (qnum = 0; qnum < vptr->tx.numq; qnum++) {
1909 for (idx = vptr->tx.tail[qnum]; vptr->tx.used[qnum] > 0;
1910 idx = (idx + 1) % vptr->options.numtx) {
1913 * Get Tx Descriptor
1915 td = &(vptr->tx.rings[qnum][idx]);
1916 tdinfo = &(vptr->tx.infos[qnum][idx]);
1918 if (td->tdesc0.len & OWNED_BY_NIC)
1919 break;
1921 if ((works++ > 15))
1922 break;
1924 if (td->tdesc0.TSR & TSR0_TERR) {
1925 stats->tx_errors++;
1926 stats->tx_dropped++;
1927 if (td->tdesc0.TSR & TSR0_CDH)
1928 stats->tx_heartbeat_errors++;
1929 if (td->tdesc0.TSR & TSR0_CRS)
1930 stats->tx_carrier_errors++;
1931 if (td->tdesc0.TSR & TSR0_ABT)
1932 stats->tx_aborted_errors++;
1933 if (td->tdesc0.TSR & TSR0_OWC)
1934 stats->tx_window_errors++;
1935 } else {
1936 stats->tx_packets++;
1937 stats->tx_bytes += tdinfo->skb->len;
1939 velocity_free_tx_buf(vptr, tdinfo, td);
1940 vptr->tx.used[qnum]--;
1942 vptr->tx.tail[qnum] = idx;
1944 if (AVAIL_TD(vptr, qnum) < 1)
1945 full = 1;
1948 * Look to see if we should kick the transmit network
1949 * layer for more work.
1951 if (netif_queue_stopped(vptr->netdev) && (full == 0) &&
1952 (!(vptr->mii_status & VELOCITY_LINK_FAIL))) {
1953 netif_wake_queue(vptr->netdev);
1955 return works;
1959 * velocity_rx_csum - checksum process
1960 * @rd: receive packet descriptor
1961 * @skb: network layer packet buffer
1963 * Process the status bits for the received packet and determine
1964 * if the checksum was computed and verified by the hardware
1966 static inline void velocity_rx_csum(struct rx_desc *rd, struct sk_buff *skb)
1968 skb_checksum_none_assert(skb);
1970 if (rd->rdesc1.CSM & CSM_IPKT) {
1971 if (rd->rdesc1.CSM & CSM_IPOK) {
1972 if ((rd->rdesc1.CSM & CSM_TCPKT) ||
1973 (rd->rdesc1.CSM & CSM_UDPKT)) {
1974 if (!(rd->rdesc1.CSM & CSM_TUPOK))
1975 return;
1977 skb->ip_summed = CHECKSUM_UNNECESSARY;
1983 * velocity_rx_copy - in place Rx copy for small packets
1984 * @rx_skb: network layer packet buffer candidate
1985 * @pkt_size: received data size
1986 * @rd: receive packet descriptor
1987 * @dev: network device
1989 * Replace the current skb that is scheduled for Rx processing by a
1990 * shorter, immediately allocated skb, if the received packet is small
1991 * enough. This function returns a negative value if the received
1992 * packet is too big or if memory is exhausted.
1994 static int velocity_rx_copy(struct sk_buff **rx_skb, int pkt_size,
1995 struct velocity_info *vptr)
1997 int ret = -1;
1998 if (pkt_size < rx_copybreak) {
1999 struct sk_buff *new_skb;
2001 new_skb = netdev_alloc_skb_ip_align(vptr->netdev, pkt_size);
2002 if (new_skb) {
2003 new_skb->ip_summed = rx_skb[0]->ip_summed;
2004 skb_copy_from_linear_data(*rx_skb, new_skb->data, pkt_size);
2005 *rx_skb = new_skb;
2006 ret = 0;
2010 return ret;
2014 * velocity_iph_realign - IP header alignment
2015 * @vptr: velocity we are handling
2016 * @skb: network layer packet buffer
2017 * @pkt_size: received data size
2019 * Align IP header on a 2 bytes boundary. This behavior can be
2020 * configured by the user.
2022 static inline void velocity_iph_realign(struct velocity_info *vptr,
2023 struct sk_buff *skb, int pkt_size)
2025 if (vptr->flags & VELOCITY_FLAGS_IP_ALIGN) {
2026 memmove(skb->data + 2, skb->data, pkt_size);
2027 skb_reserve(skb, 2);
2032 * velocity_receive_frame - received packet processor
2033 * @vptr: velocity we are handling
2034 * @idx: ring index
2036 * A packet has arrived. We process the packet and if appropriate
2037 * pass the frame up the network stack
2039 static int velocity_receive_frame(struct velocity_info *vptr, int idx)
2041 struct net_device_stats *stats = &vptr->netdev->stats;
2042 struct velocity_rd_info *rd_info = &(vptr->rx.info[idx]);
2043 struct rx_desc *rd = &(vptr->rx.ring[idx]);
2044 int pkt_len = le16_to_cpu(rd->rdesc0.len) & 0x3fff;
2045 struct sk_buff *skb;
2047 if (unlikely(rd->rdesc0.RSR & (RSR_STP | RSR_EDP | RSR_RL))) {
2048 if (rd->rdesc0.RSR & (RSR_STP | RSR_EDP))
2049 VELOCITY_PRT(MSG_LEVEL_VERBOSE, KERN_ERR " %s : the received frame spans multiple RDs.\n", vptr->netdev->name);
2050 stats->rx_length_errors++;
2051 return -EINVAL;
2054 if (rd->rdesc0.RSR & RSR_MAR)
2055 stats->multicast++;
2057 skb = rd_info->skb;
2059 dma_sync_single_for_cpu(vptr->dev, rd_info->skb_dma,
2060 vptr->rx.buf_sz, DMA_FROM_DEVICE);
2062 velocity_rx_csum(rd, skb);
2064 if (velocity_rx_copy(&skb, pkt_len, vptr) < 0) {
2065 velocity_iph_realign(vptr, skb, pkt_len);
2066 rd_info->skb = NULL;
2067 dma_unmap_single(vptr->dev, rd_info->skb_dma, vptr->rx.buf_sz,
2068 DMA_FROM_DEVICE);
2069 } else {
2070 dma_sync_single_for_device(vptr->dev, rd_info->skb_dma,
2071 vptr->rx.buf_sz, DMA_FROM_DEVICE);
2074 skb_put(skb, pkt_len - 4);
2075 skb->protocol = eth_type_trans(skb, vptr->netdev);
2077 if (rd->rdesc0.RSR & RSR_DETAG) {
2078 u16 vid = swab16(le16_to_cpu(rd->rdesc1.PQTAG));
2080 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), vid);
2082 netif_receive_skb(skb);
2084 stats->rx_bytes += pkt_len;
2085 stats->rx_packets++;
2087 return 0;
2091 * velocity_rx_srv - service RX interrupt
2092 * @vptr: velocity
2094 * Walk the receive ring of the velocity adapter and remove
2095 * any received packets from the receive queue. Hand the ring
2096 * slots back to the adapter for reuse.
2098 static int velocity_rx_srv(struct velocity_info *vptr, int budget_left)
2100 struct net_device_stats *stats = &vptr->netdev->stats;
2101 int rd_curr = vptr->rx.curr;
2102 int works = 0;
2104 while (works < budget_left) {
2105 struct rx_desc *rd = vptr->rx.ring + rd_curr;
2107 if (!vptr->rx.info[rd_curr].skb)
2108 break;
2110 if (rd->rdesc0.len & OWNED_BY_NIC)
2111 break;
2113 rmb();
2116 * Don't drop CE or RL error frame although RXOK is off
2118 if (rd->rdesc0.RSR & (RSR_RXOK | RSR_CE | RSR_RL)) {
2119 if (velocity_receive_frame(vptr, rd_curr) < 0)
2120 stats->rx_dropped++;
2121 } else {
2122 if (rd->rdesc0.RSR & RSR_CRC)
2123 stats->rx_crc_errors++;
2124 if (rd->rdesc0.RSR & RSR_FAE)
2125 stats->rx_frame_errors++;
2127 stats->rx_dropped++;
2130 rd->size |= RX_INTEN;
2132 rd_curr++;
2133 if (rd_curr >= vptr->options.numrx)
2134 rd_curr = 0;
2135 works++;
2138 vptr->rx.curr = rd_curr;
2140 if ((works > 0) && (velocity_rx_refill(vptr) > 0))
2141 velocity_give_many_rx_descs(vptr);
2143 VAR_USED(stats);
2144 return works;
2147 static int velocity_poll(struct napi_struct *napi, int budget)
2149 struct velocity_info *vptr = container_of(napi,
2150 struct velocity_info, napi);
2151 unsigned int rx_done;
2152 unsigned long flags;
2155 * Do rx and tx twice for performance (taken from the VIA
2156 * out-of-tree driver).
2158 rx_done = velocity_rx_srv(vptr, budget);
2159 spin_lock_irqsave(&vptr->lock, flags);
2160 velocity_tx_srv(vptr);
2161 /* If budget not fully consumed, exit the polling mode */
2162 if (rx_done < budget) {
2163 napi_complete(napi);
2164 mac_enable_int(vptr->mac_regs);
2166 spin_unlock_irqrestore(&vptr->lock, flags);
2168 return rx_done;
2172 * velocity_intr - interrupt callback
2173 * @irq: interrupt number
2174 * @dev_instance: interrupting device
2176 * Called whenever an interrupt is generated by the velocity
2177 * adapter IRQ line. We may not be the source of the interrupt
2178 * and need to identify initially if we are, and if not exit as
2179 * efficiently as possible.
2181 static irqreturn_t velocity_intr(int irq, void *dev_instance)
2183 struct net_device *dev = dev_instance;
2184 struct velocity_info *vptr = netdev_priv(dev);
2185 u32 isr_status;
2187 spin_lock(&vptr->lock);
2188 isr_status = mac_read_isr(vptr->mac_regs);
2190 /* Not us ? */
2191 if (isr_status == 0) {
2192 spin_unlock(&vptr->lock);
2193 return IRQ_NONE;
2196 /* Ack the interrupt */
2197 mac_write_isr(vptr->mac_regs, isr_status);
2199 if (likely(napi_schedule_prep(&vptr->napi))) {
2200 mac_disable_int(vptr->mac_regs);
2201 __napi_schedule(&vptr->napi);
2204 if (isr_status & (~(ISR_PRXI | ISR_PPRXI | ISR_PTXI | ISR_PPTXI)))
2205 velocity_error(vptr, isr_status);
2207 spin_unlock(&vptr->lock);
2209 return IRQ_HANDLED;
2213 * velocity_open - interface activation callback
2214 * @dev: network layer device to open
2216 * Called when the network layer brings the interface up. Returns
2217 * a negative posix error code on failure, or zero on success.
2219 * All the ring allocation and set up is done on open for this
2220 * adapter to minimise memory usage when inactive
2222 static int velocity_open(struct net_device *dev)
2224 struct velocity_info *vptr = netdev_priv(dev);
2225 int ret;
2227 ret = velocity_init_rings(vptr, dev->mtu);
2228 if (ret < 0)
2229 goto out;
2231 /* Ensure chip is running */
2232 velocity_set_power_state(vptr, PCI_D0);
2234 velocity_init_registers(vptr, VELOCITY_INIT_COLD);
2236 ret = request_irq(dev->irq, velocity_intr, IRQF_SHARED,
2237 dev->name, dev);
2238 if (ret < 0) {
2239 /* Power down the chip */
2240 velocity_set_power_state(vptr, PCI_D3hot);
2241 velocity_free_rings(vptr);
2242 goto out;
2245 velocity_give_many_rx_descs(vptr);
2247 mac_enable_int(vptr->mac_regs);
2248 netif_start_queue(dev);
2249 napi_enable(&vptr->napi);
2250 vptr->flags |= VELOCITY_FLAGS_OPENED;
2251 out:
2252 return ret;
2256 * velocity_shutdown - shut down the chip
2257 * @vptr: velocity to deactivate
2259 * Shuts down the internal operations of the velocity and
2260 * disables interrupts, autopolling, transmit and receive
2262 static void velocity_shutdown(struct velocity_info *vptr)
2264 struct mac_regs __iomem *regs = vptr->mac_regs;
2265 mac_disable_int(regs);
2266 writel(CR0_STOP, &regs->CR0Set);
2267 writew(0xFFFF, &regs->TDCSRClr);
2268 writeb(0xFF, &regs->RDCSRClr);
2269 safe_disable_mii_autopoll(regs);
2270 mac_clear_isr(regs);
2274 * velocity_change_mtu - MTU change callback
2275 * @dev: network device
2276 * @new_mtu: desired MTU
2278 * Handle requests from the networking layer for MTU change on
2279 * this interface. It gets called on a change by the network layer.
2280 * Return zero for success or negative posix error code.
2282 static int velocity_change_mtu(struct net_device *dev, int new_mtu)
2284 struct velocity_info *vptr = netdev_priv(dev);
2285 int ret = 0;
2287 if ((new_mtu < VELOCITY_MIN_MTU) || new_mtu > (VELOCITY_MAX_MTU)) {
2288 VELOCITY_PRT(MSG_LEVEL_ERR, KERN_NOTICE "%s: Invalid MTU.\n",
2289 vptr->netdev->name);
2290 ret = -EINVAL;
2291 goto out_0;
2294 if (!netif_running(dev)) {
2295 dev->mtu = new_mtu;
2296 goto out_0;
2299 if (dev->mtu != new_mtu) {
2300 struct velocity_info *tmp_vptr;
2301 unsigned long flags;
2302 struct rx_info rx;
2303 struct tx_info tx;
2305 tmp_vptr = kzalloc(sizeof(*tmp_vptr), GFP_KERNEL);
2306 if (!tmp_vptr) {
2307 ret = -ENOMEM;
2308 goto out_0;
2311 tmp_vptr->netdev = dev;
2312 tmp_vptr->pdev = vptr->pdev;
2313 tmp_vptr->dev = vptr->dev;
2314 tmp_vptr->options = vptr->options;
2315 tmp_vptr->tx.numq = vptr->tx.numq;
2317 ret = velocity_init_rings(tmp_vptr, new_mtu);
2318 if (ret < 0)
2319 goto out_free_tmp_vptr_1;
2321 napi_disable(&vptr->napi);
2323 spin_lock_irqsave(&vptr->lock, flags);
2325 netif_stop_queue(dev);
2326 velocity_shutdown(vptr);
2328 rx = vptr->rx;
2329 tx = vptr->tx;
2331 vptr->rx = tmp_vptr->rx;
2332 vptr->tx = tmp_vptr->tx;
2334 tmp_vptr->rx = rx;
2335 tmp_vptr->tx = tx;
2337 dev->mtu = new_mtu;
2339 velocity_init_registers(vptr, VELOCITY_INIT_COLD);
2341 velocity_give_many_rx_descs(vptr);
2343 napi_enable(&vptr->napi);
2345 mac_enable_int(vptr->mac_regs);
2346 netif_start_queue(dev);
2348 spin_unlock_irqrestore(&vptr->lock, flags);
2350 velocity_free_rings(tmp_vptr);
2352 out_free_tmp_vptr_1:
2353 kfree(tmp_vptr);
2355 out_0:
2356 return ret;
2359 #ifdef CONFIG_NET_POLL_CONTROLLER
2361 * velocity_poll_controller - Velocity Poll controller function
2362 * @dev: network device
2365 * Used by NETCONSOLE and other diagnostic tools to allow network I/P
2366 * with interrupts disabled.
2368 static void velocity_poll_controller(struct net_device *dev)
2370 disable_irq(dev->irq);
2371 velocity_intr(dev->irq, dev);
2372 enable_irq(dev->irq);
2374 #endif
2377 * velocity_mii_ioctl - MII ioctl handler
2378 * @dev: network device
2379 * @ifr: the ifreq block for the ioctl
2380 * @cmd: the command
2382 * Process MII requests made via ioctl from the network layer. These
2383 * are used by tools like kudzu to interrogate the link state of the
2384 * hardware
2386 static int velocity_mii_ioctl(struct net_device *dev, struct ifreq *ifr, int cmd)
2388 struct velocity_info *vptr = netdev_priv(dev);
2389 struct mac_regs __iomem *regs = vptr->mac_regs;
2390 unsigned long flags;
2391 struct mii_ioctl_data *miidata = if_mii(ifr);
2392 int err;
2394 switch (cmd) {
2395 case SIOCGMIIPHY:
2396 miidata->phy_id = readb(&regs->MIIADR) & 0x1f;
2397 break;
2398 case SIOCGMIIREG:
2399 if (velocity_mii_read(vptr->mac_regs, miidata->reg_num & 0x1f, &(miidata->val_out)) < 0)
2400 return -ETIMEDOUT;
2401 break;
2402 case SIOCSMIIREG:
2403 spin_lock_irqsave(&vptr->lock, flags);
2404 err = velocity_mii_write(vptr->mac_regs, miidata->reg_num & 0x1f, miidata->val_in);
2405 spin_unlock_irqrestore(&vptr->lock, flags);
2406 check_connection_type(vptr->mac_regs);
2407 if (err)
2408 return err;
2409 break;
2410 default:
2411 return -EOPNOTSUPP;
2413 return 0;
2417 * velocity_ioctl - ioctl entry point
2418 * @dev: network device
2419 * @rq: interface request ioctl
2420 * @cmd: command code
2422 * Called when the user issues an ioctl request to the network
2423 * device in question. The velocity interface supports MII.
2425 static int velocity_ioctl(struct net_device *dev, struct ifreq *rq, int cmd)
2427 struct velocity_info *vptr = netdev_priv(dev);
2428 int ret;
2430 /* If we are asked for information and the device is power
2431 saving then we need to bring the device back up to talk to it */
2433 if (!netif_running(dev))
2434 velocity_set_power_state(vptr, PCI_D0);
2436 switch (cmd) {
2437 case SIOCGMIIPHY: /* Get address of MII PHY in use. */
2438 case SIOCGMIIREG: /* Read MII PHY register. */
2439 case SIOCSMIIREG: /* Write to MII PHY register. */
2440 ret = velocity_mii_ioctl(dev, rq, cmd);
2441 break;
2443 default:
2444 ret = -EOPNOTSUPP;
2446 if (!netif_running(dev))
2447 velocity_set_power_state(vptr, PCI_D3hot);
2450 return ret;
2454 * velocity_get_status - statistics callback
2455 * @dev: network device
2457 * Callback from the network layer to allow driver statistics
2458 * to be resynchronized with hardware collected state. In the
2459 * case of the velocity we need to pull the MIB counters from
2460 * the hardware into the counters before letting the network
2461 * layer display them.
2463 static struct net_device_stats *velocity_get_stats(struct net_device *dev)
2465 struct velocity_info *vptr = netdev_priv(dev);
2467 /* If the hardware is down, don't touch MII */
2468 if (!netif_running(dev))
2469 return &dev->stats;
2471 spin_lock_irq(&vptr->lock);
2472 velocity_update_hw_mibs(vptr);
2473 spin_unlock_irq(&vptr->lock);
2475 dev->stats.rx_packets = vptr->mib_counter[HW_MIB_ifRxAllPkts];
2476 dev->stats.rx_errors = vptr->mib_counter[HW_MIB_ifRxErrorPkts];
2477 dev->stats.rx_length_errors = vptr->mib_counter[HW_MIB_ifInRangeLengthErrors];
2479 // unsigned long rx_dropped; /* no space in linux buffers */
2480 dev->stats.collisions = vptr->mib_counter[HW_MIB_ifTxEtherCollisions];
2481 /* detailed rx_errors: */
2482 // unsigned long rx_length_errors;
2483 // unsigned long rx_over_errors; /* receiver ring buff overflow */
2484 dev->stats.rx_crc_errors = vptr->mib_counter[HW_MIB_ifRxPktCRCE];
2485 // unsigned long rx_frame_errors; /* recv'd frame alignment error */
2486 // unsigned long rx_fifo_errors; /* recv'r fifo overrun */
2487 // unsigned long rx_missed_errors; /* receiver missed packet */
2489 /* detailed tx_errors */
2490 // unsigned long tx_fifo_errors;
2492 return &dev->stats;
2496 * velocity_close - close adapter callback
2497 * @dev: network device
2499 * Callback from the network layer when the velocity is being
2500 * deactivated by the network layer
2502 static int velocity_close(struct net_device *dev)
2504 struct velocity_info *vptr = netdev_priv(dev);
2506 napi_disable(&vptr->napi);
2507 netif_stop_queue(dev);
2508 velocity_shutdown(vptr);
2510 if (vptr->flags & VELOCITY_FLAGS_WOL_ENABLED)
2511 velocity_get_ip(vptr);
2513 free_irq(dev->irq, dev);
2515 velocity_free_rings(vptr);
2517 vptr->flags &= (~VELOCITY_FLAGS_OPENED);
2518 return 0;
2522 * velocity_xmit - transmit packet callback
2523 * @skb: buffer to transmit
2524 * @dev: network device
2526 * Called by the networ layer to request a packet is queued to
2527 * the velocity. Returns zero on success.
2529 static netdev_tx_t velocity_xmit(struct sk_buff *skb,
2530 struct net_device *dev)
2532 struct velocity_info *vptr = netdev_priv(dev);
2533 int qnum = 0;
2534 struct tx_desc *td_ptr;
2535 struct velocity_td_info *tdinfo;
2536 unsigned long flags;
2537 int pktlen;
2538 int index, prev;
2539 int i = 0;
2541 if (skb_padto(skb, ETH_ZLEN))
2542 goto out;
2544 /* The hardware can handle at most 7 memory segments, so merge
2545 * the skb if there are more */
2546 if (skb_shinfo(skb)->nr_frags > 6 && __skb_linearize(skb)) {
2547 dev_kfree_skb_any(skb);
2548 return NETDEV_TX_OK;
2551 pktlen = skb_shinfo(skb)->nr_frags == 0 ?
2552 max_t(unsigned int, skb->len, ETH_ZLEN) :
2553 skb_headlen(skb);
2555 spin_lock_irqsave(&vptr->lock, flags);
2557 index = vptr->tx.curr[qnum];
2558 td_ptr = &(vptr->tx.rings[qnum][index]);
2559 tdinfo = &(vptr->tx.infos[qnum][index]);
2561 td_ptr->tdesc1.TCR = TCR0_TIC;
2562 td_ptr->td_buf[0].size &= ~TD_QUEUE;
2565 * Map the linear network buffer into PCI space and
2566 * add it to the transmit ring.
2568 tdinfo->skb = skb;
2569 tdinfo->skb_dma[0] = dma_map_single(vptr->dev, skb->data, pktlen,
2570 DMA_TO_DEVICE);
2571 td_ptr->tdesc0.len = cpu_to_le16(pktlen);
2572 td_ptr->td_buf[0].pa_low = cpu_to_le32(tdinfo->skb_dma[0]);
2573 td_ptr->td_buf[0].pa_high = 0;
2574 td_ptr->td_buf[0].size = cpu_to_le16(pktlen);
2576 /* Handle fragments */
2577 for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
2578 const skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
2580 tdinfo->skb_dma[i + 1] = skb_frag_dma_map(vptr->dev,
2581 frag, 0,
2582 skb_frag_size(frag),
2583 DMA_TO_DEVICE);
2585 td_ptr->td_buf[i + 1].pa_low = cpu_to_le32(tdinfo->skb_dma[i + 1]);
2586 td_ptr->td_buf[i + 1].pa_high = 0;
2587 td_ptr->td_buf[i + 1].size = cpu_to_le16(skb_frag_size(frag));
2589 tdinfo->nskb_dma = i + 1;
2591 td_ptr->tdesc1.cmd = TCPLS_NORMAL + (tdinfo->nskb_dma + 1) * 16;
2593 if (skb_vlan_tag_present(skb)) {
2594 td_ptr->tdesc1.vlan = cpu_to_le16(skb_vlan_tag_get(skb));
2595 td_ptr->tdesc1.TCR |= TCR0_VETAG;
2599 * Handle hardware checksum
2601 if (skb->ip_summed == CHECKSUM_PARTIAL) {
2602 const struct iphdr *ip = ip_hdr(skb);
2603 if (ip->protocol == IPPROTO_TCP)
2604 td_ptr->tdesc1.TCR |= TCR0_TCPCK;
2605 else if (ip->protocol == IPPROTO_UDP)
2606 td_ptr->tdesc1.TCR |= (TCR0_UDPCK);
2607 td_ptr->tdesc1.TCR |= TCR0_IPCK;
2610 prev = index - 1;
2611 if (prev < 0)
2612 prev = vptr->options.numtx - 1;
2613 td_ptr->tdesc0.len |= OWNED_BY_NIC;
2614 vptr->tx.used[qnum]++;
2615 vptr->tx.curr[qnum] = (index + 1) % vptr->options.numtx;
2617 if (AVAIL_TD(vptr, qnum) < 1)
2618 netif_stop_queue(dev);
2620 td_ptr = &(vptr->tx.rings[qnum][prev]);
2621 td_ptr->td_buf[0].size |= TD_QUEUE;
2622 mac_tx_queue_wake(vptr->mac_regs, qnum);
2624 spin_unlock_irqrestore(&vptr->lock, flags);
2625 out:
2626 return NETDEV_TX_OK;
2629 static const struct net_device_ops velocity_netdev_ops = {
2630 .ndo_open = velocity_open,
2631 .ndo_stop = velocity_close,
2632 .ndo_start_xmit = velocity_xmit,
2633 .ndo_get_stats = velocity_get_stats,
2634 .ndo_validate_addr = eth_validate_addr,
2635 .ndo_set_mac_address = eth_mac_addr,
2636 .ndo_set_rx_mode = velocity_set_multi,
2637 .ndo_change_mtu = velocity_change_mtu,
2638 .ndo_do_ioctl = velocity_ioctl,
2639 .ndo_vlan_rx_add_vid = velocity_vlan_rx_add_vid,
2640 .ndo_vlan_rx_kill_vid = velocity_vlan_rx_kill_vid,
2641 #ifdef CONFIG_NET_POLL_CONTROLLER
2642 .ndo_poll_controller = velocity_poll_controller,
2643 #endif
2647 * velocity_init_info - init private data
2648 * @pdev: PCI device
2649 * @vptr: Velocity info
2650 * @info: Board type
2652 * Set up the initial velocity_info struct for the device that has been
2653 * discovered.
2655 static void velocity_init_info(struct velocity_info *vptr,
2656 const struct velocity_info_tbl *info)
2658 vptr->chip_id = info->chip_id;
2659 vptr->tx.numq = info->txqueue;
2660 vptr->multicast_limit = MCAM_SIZE;
2661 spin_lock_init(&vptr->lock);
2665 * velocity_get_pci_info - retrieve PCI info for device
2666 * @vptr: velocity device
2667 * @pdev: PCI device it matches
2669 * Retrieve the PCI configuration space data that interests us from
2670 * the kernel PCI layer
2672 static int velocity_get_pci_info(struct velocity_info *vptr)
2674 struct pci_dev *pdev = vptr->pdev;
2676 pci_set_master(pdev);
2678 vptr->ioaddr = pci_resource_start(pdev, 0);
2679 vptr->memaddr = pci_resource_start(pdev, 1);
2681 if (!(pci_resource_flags(pdev, 0) & IORESOURCE_IO)) {
2682 dev_err(&pdev->dev,
2683 "region #0 is not an I/O resource, aborting.\n");
2684 return -EINVAL;
2687 if ((pci_resource_flags(pdev, 1) & IORESOURCE_IO)) {
2688 dev_err(&pdev->dev,
2689 "region #1 is an I/O resource, aborting.\n");
2690 return -EINVAL;
2693 if (pci_resource_len(pdev, 1) < VELOCITY_IO_SIZE) {
2694 dev_err(&pdev->dev, "region #1 is too small.\n");
2695 return -EINVAL;
2698 return 0;
2702 * velocity_get_platform_info - retrieve platform info for device
2703 * @vptr: velocity device
2704 * @pdev: platform device it matches
2706 * Retrieve the Platform configuration data that interests us
2708 static int velocity_get_platform_info(struct velocity_info *vptr)
2710 struct resource res;
2711 int ret;
2713 if (of_get_property(vptr->dev->of_node, "no-eeprom", NULL))
2714 vptr->no_eeprom = 1;
2716 ret = of_address_to_resource(vptr->dev->of_node, 0, &res);
2717 if (ret) {
2718 dev_err(vptr->dev, "unable to find memory address\n");
2719 return ret;
2722 vptr->memaddr = res.start;
2724 if (resource_size(&res) < VELOCITY_IO_SIZE) {
2725 dev_err(vptr->dev, "memory region is too small.\n");
2726 return -EINVAL;
2729 return 0;
2733 * velocity_print_info - per driver data
2734 * @vptr: velocity
2736 * Print per driver data as the kernel driver finds Velocity
2737 * hardware
2739 static void velocity_print_info(struct velocity_info *vptr)
2741 struct net_device *dev = vptr->netdev;
2743 printk(KERN_INFO "%s: %s\n", dev->name, get_chip_name(vptr->chip_id));
2744 printk(KERN_INFO "%s: Ethernet Address: %pM\n",
2745 dev->name, dev->dev_addr);
2748 static u32 velocity_get_link(struct net_device *dev)
2750 struct velocity_info *vptr = netdev_priv(dev);
2751 struct mac_regs __iomem *regs = vptr->mac_regs;
2752 return BYTE_REG_BITS_IS_ON(PHYSR0_LINKGD, &regs->PHYSR0) ? 1 : 0;
2756 * velocity_probe - set up discovered velocity device
2757 * @pdev: PCI device
2758 * @ent: PCI device table entry that matched
2759 * @bustype: bus that device is connected to
2761 * Configure a discovered adapter from scratch. Return a negative
2762 * errno error code on failure paths.
2764 static int velocity_probe(struct device *dev, int irq,
2765 const struct velocity_info_tbl *info,
2766 enum velocity_bus_type bustype)
2768 static int first = 1;
2769 struct net_device *netdev;
2770 int i;
2771 const char *drv_string;
2772 struct velocity_info *vptr;
2773 struct mac_regs __iomem *regs;
2774 int ret = -ENOMEM;
2776 /* FIXME: this driver, like almost all other ethernet drivers,
2777 * can support more than MAX_UNITS.
2779 if (velocity_nics >= MAX_UNITS) {
2780 dev_notice(dev, "already found %d NICs.\n", velocity_nics);
2781 return -ENODEV;
2784 netdev = alloc_etherdev(sizeof(struct velocity_info));
2785 if (!netdev)
2786 goto out;
2788 /* Chain it all together */
2790 SET_NETDEV_DEV(netdev, dev);
2791 vptr = netdev_priv(netdev);
2793 if (first) {
2794 printk(KERN_INFO "%s Ver. %s\n",
2795 VELOCITY_FULL_DRV_NAM, VELOCITY_VERSION);
2796 printk(KERN_INFO "Copyright (c) 2002, 2003 VIA Networking Technologies, Inc.\n");
2797 printk(KERN_INFO "Copyright (c) 2004 Red Hat Inc.\n");
2798 first = 0;
2801 netdev->irq = irq;
2802 vptr->netdev = netdev;
2803 vptr->dev = dev;
2805 velocity_init_info(vptr, info);
2807 if (bustype == BUS_PCI) {
2808 vptr->pdev = to_pci_dev(dev);
2810 ret = velocity_get_pci_info(vptr);
2811 if (ret < 0)
2812 goto err_free_dev;
2813 } else {
2814 vptr->pdev = NULL;
2815 ret = velocity_get_platform_info(vptr);
2816 if (ret < 0)
2817 goto err_free_dev;
2820 regs = ioremap(vptr->memaddr, VELOCITY_IO_SIZE);
2821 if (regs == NULL) {
2822 ret = -EIO;
2823 goto err_free_dev;
2826 vptr->mac_regs = regs;
2827 vptr->rev_id = readb(&regs->rev_id);
2829 mac_wol_reset(regs);
2831 for (i = 0; i < 6; i++)
2832 netdev->dev_addr[i] = readb(&regs->PAR[i]);
2835 drv_string = dev_driver_string(dev);
2837 velocity_get_options(&vptr->options, velocity_nics, drv_string);
2840 * Mask out the options cannot be set to the chip
2843 vptr->options.flags &= info->flags;
2846 * Enable the chip specified capbilities
2849 vptr->flags = vptr->options.flags | (info->flags & 0xFF000000UL);
2851 vptr->wol_opts = vptr->options.wol_opts;
2852 vptr->flags |= VELOCITY_FLAGS_WOL_ENABLED;
2854 vptr->phy_id = MII_GET_PHY_ID(vptr->mac_regs);
2856 netdev->netdev_ops = &velocity_netdev_ops;
2857 netdev->ethtool_ops = &velocity_ethtool_ops;
2858 netif_napi_add(netdev, &vptr->napi, velocity_poll,
2859 VELOCITY_NAPI_WEIGHT);
2861 netdev->hw_features = NETIF_F_IP_CSUM | NETIF_F_SG |
2862 NETIF_F_HW_VLAN_CTAG_TX;
2863 netdev->features |= NETIF_F_HW_VLAN_CTAG_TX |
2864 NETIF_F_HW_VLAN_CTAG_FILTER | NETIF_F_HW_VLAN_CTAG_RX |
2865 NETIF_F_IP_CSUM;
2867 ret = register_netdev(netdev);
2868 if (ret < 0)
2869 goto err_iounmap;
2871 if (!velocity_get_link(netdev)) {
2872 netif_carrier_off(netdev);
2873 vptr->mii_status |= VELOCITY_LINK_FAIL;
2876 velocity_print_info(vptr);
2877 dev_set_drvdata(vptr->dev, netdev);
2879 /* and leave the chip powered down */
2881 velocity_set_power_state(vptr, PCI_D3hot);
2882 velocity_nics++;
2883 out:
2884 return ret;
2886 err_iounmap:
2887 netif_napi_del(&vptr->napi);
2888 iounmap(regs);
2889 err_free_dev:
2890 free_netdev(netdev);
2891 goto out;
2895 * velocity_remove - device unplug
2896 * @dev: device being removed
2898 * Device unload callback. Called on an unplug or on module
2899 * unload for each active device that is present. Disconnects
2900 * the device from the network layer and frees all the resources
2902 static int velocity_remove(struct device *dev)
2904 struct net_device *netdev = dev_get_drvdata(dev);
2905 struct velocity_info *vptr = netdev_priv(netdev);
2907 unregister_netdev(netdev);
2908 netif_napi_del(&vptr->napi);
2909 iounmap(vptr->mac_regs);
2910 free_netdev(netdev);
2911 velocity_nics--;
2913 return 0;
2916 static int velocity_pci_probe(struct pci_dev *pdev,
2917 const struct pci_device_id *ent)
2919 const struct velocity_info_tbl *info =
2920 &chip_info_table[ent->driver_data];
2921 int ret;
2923 ret = pci_enable_device(pdev);
2924 if (ret < 0)
2925 return ret;
2927 ret = pci_request_regions(pdev, VELOCITY_NAME);
2928 if (ret < 0) {
2929 dev_err(&pdev->dev, "No PCI resources.\n");
2930 goto fail1;
2933 ret = velocity_probe(&pdev->dev, pdev->irq, info, BUS_PCI);
2934 if (ret == 0)
2935 return 0;
2937 pci_release_regions(pdev);
2938 fail1:
2939 pci_disable_device(pdev);
2940 return ret;
2943 static void velocity_pci_remove(struct pci_dev *pdev)
2945 velocity_remove(&pdev->dev);
2947 pci_release_regions(pdev);
2948 pci_disable_device(pdev);
2951 static int velocity_platform_probe(struct platform_device *pdev)
2953 const struct of_device_id *of_id;
2954 const struct velocity_info_tbl *info;
2955 int irq;
2957 of_id = of_match_device(velocity_of_ids, &pdev->dev);
2958 if (!of_id)
2959 return -EINVAL;
2960 info = of_id->data;
2962 irq = irq_of_parse_and_map(pdev->dev.of_node, 0);
2963 if (!irq)
2964 return -EINVAL;
2966 return velocity_probe(&pdev->dev, irq, info, BUS_PLATFORM);
2969 static int velocity_platform_remove(struct platform_device *pdev)
2971 velocity_remove(&pdev->dev);
2973 return 0;
2976 #ifdef CONFIG_PM_SLEEP
2978 * wol_calc_crc - WOL CRC
2979 * @pattern: data pattern
2980 * @mask_pattern: mask
2982 * Compute the wake on lan crc hashes for the packet header
2983 * we are interested in.
2985 static u16 wol_calc_crc(int size, u8 *pattern, u8 *mask_pattern)
2987 u16 crc = 0xFFFF;
2988 u8 mask;
2989 int i, j;
2991 for (i = 0; i < size; i++) {
2992 mask = mask_pattern[i];
2994 /* Skip this loop if the mask equals to zero */
2995 if (mask == 0x00)
2996 continue;
2998 for (j = 0; j < 8; j++) {
2999 if ((mask & 0x01) == 0) {
3000 mask >>= 1;
3001 continue;
3003 mask >>= 1;
3004 crc = crc_ccitt(crc, &(pattern[i * 8 + j]), 1);
3007 /* Finally, invert the result once to get the correct data */
3008 crc = ~crc;
3009 return bitrev32(crc) >> 16;
3013 * velocity_set_wol - set up for wake on lan
3014 * @vptr: velocity to set WOL status on
3016 * Set a card up for wake on lan either by unicast or by
3017 * ARP packet.
3019 * FIXME: check static buffer is safe here
3021 static int velocity_set_wol(struct velocity_info *vptr)
3023 struct mac_regs __iomem *regs = vptr->mac_regs;
3024 enum speed_opt spd_dpx = vptr->options.spd_dpx;
3025 static u8 buf[256];
3026 int i;
3028 static u32 mask_pattern[2][4] = {
3029 {0x00203000, 0x000003C0, 0x00000000, 0x0000000}, /* ARP */
3030 {0xfffff000, 0xffffffff, 0xffffffff, 0x000ffff} /* Magic Packet */
3033 writew(0xFFFF, &regs->WOLCRClr);
3034 writeb(WOLCFG_SAB | WOLCFG_SAM, &regs->WOLCFGSet);
3035 writew(WOLCR_MAGIC_EN, &regs->WOLCRSet);
3038 if (vptr->wol_opts & VELOCITY_WOL_PHY)
3039 writew((WOLCR_LINKON_EN|WOLCR_LINKOFF_EN), &regs->WOLCRSet);
3042 if (vptr->wol_opts & VELOCITY_WOL_UCAST)
3043 writew(WOLCR_UNICAST_EN, &regs->WOLCRSet);
3045 if (vptr->wol_opts & VELOCITY_WOL_ARP) {
3046 struct arp_packet *arp = (struct arp_packet *) buf;
3047 u16 crc;
3048 memset(buf, 0, sizeof(struct arp_packet) + 7);
3050 for (i = 0; i < 4; i++)
3051 writel(mask_pattern[0][i], &regs->ByteMask[0][i]);
3053 arp->type = htons(ETH_P_ARP);
3054 arp->ar_op = htons(1);
3056 memcpy(arp->ar_tip, vptr->ip_addr, 4);
3058 crc = wol_calc_crc((sizeof(struct arp_packet) + 7) / 8, buf,
3059 (u8 *) & mask_pattern[0][0]);
3061 writew(crc, &regs->PatternCRC[0]);
3062 writew(WOLCR_ARP_EN, &regs->WOLCRSet);
3065 BYTE_REG_BITS_ON(PWCFG_WOLTYPE, &regs->PWCFGSet);
3066 BYTE_REG_BITS_ON(PWCFG_LEGACY_WOLEN, &regs->PWCFGSet);
3068 writew(0x0FFF, &regs->WOLSRClr);
3070 if (spd_dpx == SPD_DPX_1000_FULL)
3071 goto mac_done;
3073 if (spd_dpx != SPD_DPX_AUTO)
3074 goto advertise_done;
3076 if (vptr->mii_status & VELOCITY_AUTONEG_ENABLE) {
3077 if (PHYID_GET_PHY_ID(vptr->phy_id) == PHYID_CICADA_CS8201)
3078 MII_REG_BITS_ON(AUXCR_MDPPS, MII_NCONFIG, vptr->mac_regs);
3080 MII_REG_BITS_OFF(ADVERTISE_1000FULL | ADVERTISE_1000HALF, MII_CTRL1000, vptr->mac_regs);
3083 if (vptr->mii_status & VELOCITY_SPEED_1000)
3084 MII_REG_BITS_ON(BMCR_ANRESTART, MII_BMCR, vptr->mac_regs);
3086 advertise_done:
3087 BYTE_REG_BITS_ON(CHIPGCR_FCMODE, &regs->CHIPGCR);
3090 u8 GCR;
3091 GCR = readb(&regs->CHIPGCR);
3092 GCR = (GCR & ~CHIPGCR_FCGMII) | CHIPGCR_FCFDX;
3093 writeb(GCR, &regs->CHIPGCR);
3096 mac_done:
3097 BYTE_REG_BITS_OFF(ISR_PWEI, &regs->ISR);
3098 /* Turn on SWPTAG just before entering power mode */
3099 BYTE_REG_BITS_ON(STICKHW_SWPTAG, &regs->STICKHW);
3100 /* Go to bed ..... */
3101 BYTE_REG_BITS_ON((STICKHW_DS1 | STICKHW_DS0), &regs->STICKHW);
3103 return 0;
3107 * velocity_save_context - save registers
3108 * @vptr: velocity
3109 * @context: buffer for stored context
3111 * Retrieve the current configuration from the velocity hardware
3112 * and stash it in the context structure, for use by the context
3113 * restore functions. This allows us to save things we need across
3114 * power down states
3116 static void velocity_save_context(struct velocity_info *vptr, struct velocity_context *context)
3118 struct mac_regs __iomem *regs = vptr->mac_regs;
3119 u16 i;
3120 u8 __iomem *ptr = (u8 __iomem *)regs;
3122 for (i = MAC_REG_PAR; i < MAC_REG_CR0_CLR; i += 4)
3123 *((u32 *) (context->mac_reg + i)) = readl(ptr + i);
3125 for (i = MAC_REG_MAR; i < MAC_REG_TDCSR_CLR; i += 4)
3126 *((u32 *) (context->mac_reg + i)) = readl(ptr + i);
3128 for (i = MAC_REG_RDBASE_LO; i < MAC_REG_FIFO_TEST0; i += 4)
3129 *((u32 *) (context->mac_reg + i)) = readl(ptr + i);
3133 static int velocity_suspend(struct device *dev)
3135 struct net_device *netdev = dev_get_drvdata(dev);
3136 struct velocity_info *vptr = netdev_priv(netdev);
3137 unsigned long flags;
3139 if (!netif_running(vptr->netdev))
3140 return 0;
3142 netif_device_detach(vptr->netdev);
3144 spin_lock_irqsave(&vptr->lock, flags);
3145 if (vptr->pdev)
3146 pci_save_state(vptr->pdev);
3148 if (vptr->flags & VELOCITY_FLAGS_WOL_ENABLED) {
3149 velocity_get_ip(vptr);
3150 velocity_save_context(vptr, &vptr->context);
3151 velocity_shutdown(vptr);
3152 velocity_set_wol(vptr);
3153 if (vptr->pdev)
3154 pci_enable_wake(vptr->pdev, PCI_D3hot, 1);
3155 velocity_set_power_state(vptr, PCI_D3hot);
3156 } else {
3157 velocity_save_context(vptr, &vptr->context);
3158 velocity_shutdown(vptr);
3159 if (vptr->pdev)
3160 pci_disable_device(vptr->pdev);
3161 velocity_set_power_state(vptr, PCI_D3hot);
3164 spin_unlock_irqrestore(&vptr->lock, flags);
3165 return 0;
3169 * velocity_restore_context - restore registers
3170 * @vptr: velocity
3171 * @context: buffer for stored context
3173 * Reload the register configuration from the velocity context
3174 * created by velocity_save_context.
3176 static void velocity_restore_context(struct velocity_info *vptr, struct velocity_context *context)
3178 struct mac_regs __iomem *regs = vptr->mac_regs;
3179 int i;
3180 u8 __iomem *ptr = (u8 __iomem *)regs;
3182 for (i = MAC_REG_PAR; i < MAC_REG_CR0_SET; i += 4)
3183 writel(*((u32 *) (context->mac_reg + i)), ptr + i);
3185 /* Just skip cr0 */
3186 for (i = MAC_REG_CR1_SET; i < MAC_REG_CR0_CLR; i++) {
3187 /* Clear */
3188 writeb(~(*((u8 *) (context->mac_reg + i))), ptr + i + 4);
3189 /* Set */
3190 writeb(*((u8 *) (context->mac_reg + i)), ptr + i);
3193 for (i = MAC_REG_MAR; i < MAC_REG_IMR; i += 4)
3194 writel(*((u32 *) (context->mac_reg + i)), ptr + i);
3196 for (i = MAC_REG_RDBASE_LO; i < MAC_REG_FIFO_TEST0; i += 4)
3197 writel(*((u32 *) (context->mac_reg + i)), ptr + i);
3199 for (i = MAC_REG_TDCSR_SET; i <= MAC_REG_RDCSR_SET; i++)
3200 writeb(*((u8 *) (context->mac_reg + i)), ptr + i);
3203 static int velocity_resume(struct device *dev)
3205 struct net_device *netdev = dev_get_drvdata(dev);
3206 struct velocity_info *vptr = netdev_priv(netdev);
3207 unsigned long flags;
3208 int i;
3210 if (!netif_running(vptr->netdev))
3211 return 0;
3213 velocity_set_power_state(vptr, PCI_D0);
3215 if (vptr->pdev) {
3216 pci_enable_wake(vptr->pdev, PCI_D0, 0);
3217 pci_restore_state(vptr->pdev);
3220 mac_wol_reset(vptr->mac_regs);
3222 spin_lock_irqsave(&vptr->lock, flags);
3223 velocity_restore_context(vptr, &vptr->context);
3224 velocity_init_registers(vptr, VELOCITY_INIT_WOL);
3225 mac_disable_int(vptr->mac_regs);
3227 velocity_tx_srv(vptr);
3229 for (i = 0; i < vptr->tx.numq; i++) {
3230 if (vptr->tx.used[i])
3231 mac_tx_queue_wake(vptr->mac_regs, i);
3234 mac_enable_int(vptr->mac_regs);
3235 spin_unlock_irqrestore(&vptr->lock, flags);
3236 netif_device_attach(vptr->netdev);
3238 return 0;
3240 #endif /* CONFIG_PM_SLEEP */
3242 static SIMPLE_DEV_PM_OPS(velocity_pm_ops, velocity_suspend, velocity_resume);
3245 * Definition for our device driver. The PCI layer interface
3246 * uses this to handle all our card discover and plugging
3248 static struct pci_driver velocity_pci_driver = {
3249 .name = VELOCITY_NAME,
3250 .id_table = velocity_pci_id_table,
3251 .probe = velocity_pci_probe,
3252 .remove = velocity_pci_remove,
3253 .driver = {
3254 .pm = &velocity_pm_ops,
3258 static struct platform_driver velocity_platform_driver = {
3259 .probe = velocity_platform_probe,
3260 .remove = velocity_platform_remove,
3261 .driver = {
3262 .name = "via-velocity",
3263 .of_match_table = velocity_of_ids,
3264 .pm = &velocity_pm_ops,
3269 * velocity_ethtool_up - pre hook for ethtool
3270 * @dev: network device
3272 * Called before an ethtool operation. We need to make sure the
3273 * chip is out of D3 state before we poke at it.
3275 static int velocity_ethtool_up(struct net_device *dev)
3277 struct velocity_info *vptr = netdev_priv(dev);
3278 if (!netif_running(dev))
3279 velocity_set_power_state(vptr, PCI_D0);
3280 return 0;
3284 * velocity_ethtool_down - post hook for ethtool
3285 * @dev: network device
3287 * Called after an ethtool operation. Restore the chip back to D3
3288 * state if it isn't running.
3290 static void velocity_ethtool_down(struct net_device *dev)
3292 struct velocity_info *vptr = netdev_priv(dev);
3293 if (!netif_running(dev))
3294 velocity_set_power_state(vptr, PCI_D3hot);
3297 static int velocity_get_settings(struct net_device *dev,
3298 struct ethtool_cmd *cmd)
3300 struct velocity_info *vptr = netdev_priv(dev);
3301 struct mac_regs __iomem *regs = vptr->mac_regs;
3302 u32 status;
3303 status = check_connection_type(vptr->mac_regs);
3305 cmd->supported = SUPPORTED_TP |
3306 SUPPORTED_Autoneg |
3307 SUPPORTED_10baseT_Half |
3308 SUPPORTED_10baseT_Full |
3309 SUPPORTED_100baseT_Half |
3310 SUPPORTED_100baseT_Full |
3311 SUPPORTED_1000baseT_Half |
3312 SUPPORTED_1000baseT_Full;
3314 cmd->advertising = ADVERTISED_TP | ADVERTISED_Autoneg;
3315 if (vptr->options.spd_dpx == SPD_DPX_AUTO) {
3316 cmd->advertising |=
3317 ADVERTISED_10baseT_Half |
3318 ADVERTISED_10baseT_Full |
3319 ADVERTISED_100baseT_Half |
3320 ADVERTISED_100baseT_Full |
3321 ADVERTISED_1000baseT_Half |
3322 ADVERTISED_1000baseT_Full;
3323 } else {
3324 switch (vptr->options.spd_dpx) {
3325 case SPD_DPX_1000_FULL:
3326 cmd->advertising |= ADVERTISED_1000baseT_Full;
3327 break;
3328 case SPD_DPX_100_HALF:
3329 cmd->advertising |= ADVERTISED_100baseT_Half;
3330 break;
3331 case SPD_DPX_100_FULL:
3332 cmd->advertising |= ADVERTISED_100baseT_Full;
3333 break;
3334 case SPD_DPX_10_HALF:
3335 cmd->advertising |= ADVERTISED_10baseT_Half;
3336 break;
3337 case SPD_DPX_10_FULL:
3338 cmd->advertising |= ADVERTISED_10baseT_Full;
3339 break;
3340 default:
3341 break;
3345 if (status & VELOCITY_SPEED_1000)
3346 ethtool_cmd_speed_set(cmd, SPEED_1000);
3347 else if (status & VELOCITY_SPEED_100)
3348 ethtool_cmd_speed_set(cmd, SPEED_100);
3349 else
3350 ethtool_cmd_speed_set(cmd, SPEED_10);
3352 cmd->autoneg = (status & VELOCITY_AUTONEG_ENABLE) ? AUTONEG_ENABLE : AUTONEG_DISABLE;
3353 cmd->port = PORT_TP;
3354 cmd->transceiver = XCVR_INTERNAL;
3355 cmd->phy_address = readb(&regs->MIIADR) & 0x1F;
3357 if (status & VELOCITY_DUPLEX_FULL)
3358 cmd->duplex = DUPLEX_FULL;
3359 else
3360 cmd->duplex = DUPLEX_HALF;
3362 return 0;
3365 static int velocity_set_settings(struct net_device *dev,
3366 struct ethtool_cmd *cmd)
3368 struct velocity_info *vptr = netdev_priv(dev);
3369 u32 speed = ethtool_cmd_speed(cmd);
3370 u32 curr_status;
3371 u32 new_status = 0;
3372 int ret = 0;
3374 curr_status = check_connection_type(vptr->mac_regs);
3375 curr_status &= (~VELOCITY_LINK_FAIL);
3377 new_status |= ((cmd->autoneg) ? VELOCITY_AUTONEG_ENABLE : 0);
3378 new_status |= ((speed == SPEED_1000) ? VELOCITY_SPEED_1000 : 0);
3379 new_status |= ((speed == SPEED_100) ? VELOCITY_SPEED_100 : 0);
3380 new_status |= ((speed == SPEED_10) ? VELOCITY_SPEED_10 : 0);
3381 new_status |= ((cmd->duplex == DUPLEX_FULL) ? VELOCITY_DUPLEX_FULL : 0);
3383 if ((new_status & VELOCITY_AUTONEG_ENABLE) &&
3384 (new_status != (curr_status | VELOCITY_AUTONEG_ENABLE))) {
3385 ret = -EINVAL;
3386 } else {
3387 enum speed_opt spd_dpx;
3389 if (new_status & VELOCITY_AUTONEG_ENABLE)
3390 spd_dpx = SPD_DPX_AUTO;
3391 else if ((new_status & VELOCITY_SPEED_1000) &&
3392 (new_status & VELOCITY_DUPLEX_FULL)) {
3393 spd_dpx = SPD_DPX_1000_FULL;
3394 } else if (new_status & VELOCITY_SPEED_100)
3395 spd_dpx = (new_status & VELOCITY_DUPLEX_FULL) ?
3396 SPD_DPX_100_FULL : SPD_DPX_100_HALF;
3397 else if (new_status & VELOCITY_SPEED_10)
3398 spd_dpx = (new_status & VELOCITY_DUPLEX_FULL) ?
3399 SPD_DPX_10_FULL : SPD_DPX_10_HALF;
3400 else
3401 return -EOPNOTSUPP;
3403 vptr->options.spd_dpx = spd_dpx;
3405 velocity_set_media_mode(vptr, new_status);
3408 return ret;
3411 static void velocity_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info)
3413 struct velocity_info *vptr = netdev_priv(dev);
3415 strlcpy(info->driver, VELOCITY_NAME, sizeof(info->driver));
3416 strlcpy(info->version, VELOCITY_VERSION, sizeof(info->version));
3417 if (vptr->pdev)
3418 strlcpy(info->bus_info, pci_name(vptr->pdev),
3419 sizeof(info->bus_info));
3420 else
3421 strlcpy(info->bus_info, "platform", sizeof(info->bus_info));
3424 static void velocity_ethtool_get_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
3426 struct velocity_info *vptr = netdev_priv(dev);
3427 wol->supported = WAKE_PHY | WAKE_MAGIC | WAKE_UCAST | WAKE_ARP;
3428 wol->wolopts |= WAKE_MAGIC;
3430 if (vptr->wol_opts & VELOCITY_WOL_PHY)
3431 wol.wolopts|=WAKE_PHY;
3433 if (vptr->wol_opts & VELOCITY_WOL_UCAST)
3434 wol->wolopts |= WAKE_UCAST;
3435 if (vptr->wol_opts & VELOCITY_WOL_ARP)
3436 wol->wolopts |= WAKE_ARP;
3437 memcpy(&wol->sopass, vptr->wol_passwd, 6);
3440 static int velocity_ethtool_set_wol(struct net_device *dev, struct ethtool_wolinfo *wol)
3442 struct velocity_info *vptr = netdev_priv(dev);
3444 if (!(wol->wolopts & (WAKE_PHY | WAKE_MAGIC | WAKE_UCAST | WAKE_ARP)))
3445 return -EFAULT;
3446 vptr->wol_opts = VELOCITY_WOL_MAGIC;
3449 if (wol.wolopts & WAKE_PHY) {
3450 vptr->wol_opts|=VELOCITY_WOL_PHY;
3451 vptr->flags |=VELOCITY_FLAGS_WOL_ENABLED;
3455 if (wol->wolopts & WAKE_MAGIC) {
3456 vptr->wol_opts |= VELOCITY_WOL_MAGIC;
3457 vptr->flags |= VELOCITY_FLAGS_WOL_ENABLED;
3459 if (wol->wolopts & WAKE_UCAST) {
3460 vptr->wol_opts |= VELOCITY_WOL_UCAST;
3461 vptr->flags |= VELOCITY_FLAGS_WOL_ENABLED;
3463 if (wol->wolopts & WAKE_ARP) {
3464 vptr->wol_opts |= VELOCITY_WOL_ARP;
3465 vptr->flags |= VELOCITY_FLAGS_WOL_ENABLED;
3467 memcpy(vptr->wol_passwd, wol->sopass, 6);
3468 return 0;
3471 static u32 velocity_get_msglevel(struct net_device *dev)
3473 return msglevel;
3476 static void velocity_set_msglevel(struct net_device *dev, u32 value)
3478 msglevel = value;
3481 static int get_pending_timer_val(int val)
3483 int mult_bits = val >> 6;
3484 int mult = 1;
3486 switch (mult_bits)
3488 case 1:
3489 mult = 4; break;
3490 case 2:
3491 mult = 16; break;
3492 case 3:
3493 mult = 64; break;
3494 case 0:
3495 default:
3496 break;
3499 return (val & 0x3f) * mult;
3502 static void set_pending_timer_val(int *val, u32 us)
3504 u8 mult = 0;
3505 u8 shift = 0;
3507 if (us >= 0x3f) {
3508 mult = 1; /* mult with 4 */
3509 shift = 2;
3511 if (us >= 0x3f * 4) {
3512 mult = 2; /* mult with 16 */
3513 shift = 4;
3515 if (us >= 0x3f * 16) {
3516 mult = 3; /* mult with 64 */
3517 shift = 6;
3520 *val = (mult << 6) | ((us >> shift) & 0x3f);
3524 static int velocity_get_coalesce(struct net_device *dev,
3525 struct ethtool_coalesce *ecmd)
3527 struct velocity_info *vptr = netdev_priv(dev);
3529 ecmd->tx_max_coalesced_frames = vptr->options.tx_intsup;
3530 ecmd->rx_max_coalesced_frames = vptr->options.rx_intsup;
3532 ecmd->rx_coalesce_usecs = get_pending_timer_val(vptr->options.rxqueue_timer);
3533 ecmd->tx_coalesce_usecs = get_pending_timer_val(vptr->options.txqueue_timer);
3535 return 0;
3538 static int velocity_set_coalesce(struct net_device *dev,
3539 struct ethtool_coalesce *ecmd)
3541 struct velocity_info *vptr = netdev_priv(dev);
3542 int max_us = 0x3f * 64;
3543 unsigned long flags;
3545 /* 6 bits of */
3546 if (ecmd->tx_coalesce_usecs > max_us)
3547 return -EINVAL;
3548 if (ecmd->rx_coalesce_usecs > max_us)
3549 return -EINVAL;
3551 if (ecmd->tx_max_coalesced_frames > 0xff)
3552 return -EINVAL;
3553 if (ecmd->rx_max_coalesced_frames > 0xff)
3554 return -EINVAL;
3556 vptr->options.rx_intsup = ecmd->rx_max_coalesced_frames;
3557 vptr->options.tx_intsup = ecmd->tx_max_coalesced_frames;
3559 set_pending_timer_val(&vptr->options.rxqueue_timer,
3560 ecmd->rx_coalesce_usecs);
3561 set_pending_timer_val(&vptr->options.txqueue_timer,
3562 ecmd->tx_coalesce_usecs);
3564 /* Setup the interrupt suppression and queue timers */
3565 spin_lock_irqsave(&vptr->lock, flags);
3566 mac_disable_int(vptr->mac_regs);
3567 setup_adaptive_interrupts(vptr);
3568 setup_queue_timers(vptr);
3570 mac_write_int_mask(vptr->int_mask, vptr->mac_regs);
3571 mac_clear_isr(vptr->mac_regs);
3572 mac_enable_int(vptr->mac_regs);
3573 spin_unlock_irqrestore(&vptr->lock, flags);
3575 return 0;
3578 static const char velocity_gstrings[][ETH_GSTRING_LEN] = {
3579 "rx_all",
3580 "rx_ok",
3581 "tx_ok",
3582 "rx_error",
3583 "rx_runt_ok",
3584 "rx_runt_err",
3585 "rx_64",
3586 "tx_64",
3587 "rx_65_to_127",
3588 "tx_65_to_127",
3589 "rx_128_to_255",
3590 "tx_128_to_255",
3591 "rx_256_to_511",
3592 "tx_256_to_511",
3593 "rx_512_to_1023",
3594 "tx_512_to_1023",
3595 "rx_1024_to_1518",
3596 "tx_1024_to_1518",
3597 "tx_ether_collisions",
3598 "rx_crc_errors",
3599 "rx_jumbo",
3600 "tx_jumbo",
3601 "rx_mac_control_frames",
3602 "tx_mac_control_frames",
3603 "rx_frame_alignement_errors",
3604 "rx_long_ok",
3605 "rx_long_err",
3606 "tx_sqe_errors",
3607 "rx_no_buf",
3608 "rx_symbol_errors",
3609 "in_range_length_errors",
3610 "late_collisions"
3613 static void velocity_get_strings(struct net_device *dev, u32 sset, u8 *data)
3615 switch (sset) {
3616 case ETH_SS_STATS:
3617 memcpy(data, *velocity_gstrings, sizeof(velocity_gstrings));
3618 break;
3622 static int velocity_get_sset_count(struct net_device *dev, int sset)
3624 switch (sset) {
3625 case ETH_SS_STATS:
3626 return ARRAY_SIZE(velocity_gstrings);
3627 default:
3628 return -EOPNOTSUPP;
3632 static void velocity_get_ethtool_stats(struct net_device *dev,
3633 struct ethtool_stats *stats, u64 *data)
3635 if (netif_running(dev)) {
3636 struct velocity_info *vptr = netdev_priv(dev);
3637 u32 *p = vptr->mib_counter;
3638 int i;
3640 spin_lock_irq(&vptr->lock);
3641 velocity_update_hw_mibs(vptr);
3642 spin_unlock_irq(&vptr->lock);
3644 for (i = 0; i < ARRAY_SIZE(velocity_gstrings); i++)
3645 *data++ = *p++;
3649 static const struct ethtool_ops velocity_ethtool_ops = {
3650 .get_settings = velocity_get_settings,
3651 .set_settings = velocity_set_settings,
3652 .get_drvinfo = velocity_get_drvinfo,
3653 .get_wol = velocity_ethtool_get_wol,
3654 .set_wol = velocity_ethtool_set_wol,
3655 .get_msglevel = velocity_get_msglevel,
3656 .set_msglevel = velocity_set_msglevel,
3657 .get_link = velocity_get_link,
3658 .get_strings = velocity_get_strings,
3659 .get_sset_count = velocity_get_sset_count,
3660 .get_ethtool_stats = velocity_get_ethtool_stats,
3661 .get_coalesce = velocity_get_coalesce,
3662 .set_coalesce = velocity_set_coalesce,
3663 .begin = velocity_ethtool_up,
3664 .complete = velocity_ethtool_down
3667 #if defined(CONFIG_PM) && defined(CONFIG_INET)
3668 static int velocity_netdev_event(struct notifier_block *nb, unsigned long notification, void *ptr)
3670 struct in_ifaddr *ifa = ptr;
3671 struct net_device *dev = ifa->ifa_dev->dev;
3673 if (dev_net(dev) == &init_net &&
3674 dev->netdev_ops == &velocity_netdev_ops)
3675 velocity_get_ip(netdev_priv(dev));
3677 return NOTIFY_DONE;
3680 static struct notifier_block velocity_inetaddr_notifier = {
3681 .notifier_call = velocity_netdev_event,
3684 static void velocity_register_notifier(void)
3686 register_inetaddr_notifier(&velocity_inetaddr_notifier);
3689 static void velocity_unregister_notifier(void)
3691 unregister_inetaddr_notifier(&velocity_inetaddr_notifier);
3694 #else
3696 #define velocity_register_notifier() do {} while (0)
3697 #define velocity_unregister_notifier() do {} while (0)
3699 #endif /* defined(CONFIG_PM) && defined(CONFIG_INET) */
3702 * velocity_init_module - load time function
3704 * Called when the velocity module is loaded. The PCI driver
3705 * is registered with the PCI layer, and in turn will call
3706 * the probe functions for each velocity adapter installed
3707 * in the system.
3709 static int __init velocity_init_module(void)
3711 int ret_pci, ret_platform;
3713 velocity_register_notifier();
3715 ret_pci = pci_register_driver(&velocity_pci_driver);
3716 ret_platform = platform_driver_register(&velocity_platform_driver);
3718 /* if both_registers failed, remove the notifier */
3719 if ((ret_pci < 0) && (ret_platform < 0)) {
3720 velocity_unregister_notifier();
3721 return ret_pci;
3724 return 0;
3728 * velocity_cleanup - module unload
3730 * When the velocity hardware is unloaded this function is called.
3731 * It will clean up the notifiers and the unregister the PCI
3732 * driver interface for this hardware. This in turn cleans up
3733 * all discovered interfaces before returning from the function
3735 static void __exit velocity_cleanup_module(void)
3737 velocity_unregister_notifier();
3739 pci_unregister_driver(&velocity_pci_driver);
3740 platform_driver_unregister(&velocity_platform_driver);
3743 module_init(velocity_init_module);
3744 module_exit(velocity_cleanup_module);